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How to Become a Research Scientist

How to Become a Research Scientist

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Professionals with a background in biotechnology can choose to pursue many lucrative careers . One of the most common choices is to become a research scientist. These individuals work in drug and process development, consistently conducting research and performing experiments to help move the biotechnology industry forward. 

“At the highest level, a research scientist is somebody who can design and execute experiments to prove or disprove a hypothesis,” says Jared Auclair , director of the biotechnology and bioinformatics programs at Northeastern. “Within the world of biotechnology, that can mean a number of different things, from creating new drugs to improving the process of how we make a drug.”

Professionals in this industry are often drawn to the wide array of applications of this work, as well as the consistently positive career outlook. The average salary of a biotechnology research scientist is $85,907 per year, with plenty of opportunities for increased salary potential depending on specializations, location, and years of experience. 

These factors—alongside the growing demand for advancement in biotechnology over the last few decades—have led many aspiring biotechnologists to consider a career in research science. Below we offer five steps professionals can take to kick-start a career in this field.

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5 Steps to Become a Research Scientist

1. acquire the necessary technical skills..

According to Auclair, there are four main applications of research science within the biotechnology field:

  • Molecular Biology
  • Process Science
  • Biochemistry
  • Analytical Biotechnology

Professionals hoping to pursue a career in research science must begin by deciding which of these four areas is the best fit for their interests and backgrounds. They must then acquire the specific skill sets they need to excel in that area. 

Below, Auclair breaks down some of the key skills and knowledge required within each of these specializations:

  • Molecular biologists should focus on developing a complex understanding of DNA and learn how to do a Polymerase Chain Reaction alongside other DNA-related experiments. 
  • Process scientists must understand cell biology and how to work with living mammalian cells, as well as how to perform analytical experiments using mass spectrometry and other analytical tools.
  • Biochemists should focus on obtaining the skills necessary to make a protein drug, including the expression and purification of proteins.
  • Analytical biotechnicians must become comfortable with techniques like mass spectrometry—a process that uncovers what drug products are at a molecular level.

One efficient way aspiring research scientists can obtain these specific skill sets is to pursue a master’s degree in biotechnology at a top university like Northeastern. 

“The biotech program is designed in collaboration with industry so that we’re meeting their needs,” Auclair says. “This includes training students with the skills they need to be a successful research scientist.”

The curriculum of Northeastern’s program explores the core competencies required to excel in the general biotechnology field and provides students with the unique subsets of skills they need to specialize in a specific area of research science. Students can even declare one of 10 industry-aligned concentrations, including options that directly relate with these common research science roles.

“Especially in industry, most people who are doing research science—who are actually doing the experiments and helping think about experiments with some of the senior leaders in the company—are people with a master’s degree,” Auclair says.

2. Become a critical thinker.

Alongside honing technical skills, Auclair says that critical thinking abilities are key for aspiring research scientists. 

“It’s important to become a critical thinker and a problem solver, and to challenge yourself wherever you can to step outside of your comfort zone,” Auclair says. 

Though critical thinking is a common requirement among most professional career paths, it is especially important for research scientists, who are constantly tasked with innovating and thinking creatively to solve problems.

Northeastern’s master’s in biotechnology program is designed to help students grow in this regard. “Everything we do within the program is geared [toward] making you a critical thinker and a problem solver,” Auclair says. “We try to define classes and assessments to make you think, [and] we also hire most of the faculty in our program directly from the industry, so they bring with them real-world experience that they can talk about with the students.”

These real-world case studies are a core component of Northeastern’s approach to learning, and they help prepare students to think critically about their work. By bringing this exposure into the classroom, students also graduate better prepared to tackle current industry challenges and adapt to evolving trends .

3. Hone your “power skills.”

It’s no longer enough for research scientists in biotechnology to have obtained the technical skills needed to complete their work. Today, many employers require an array of industry-specific “power skills”—previously known as “soft skills”—among candidates for research science roles.

Below we explore the top three “power skills” for biotechnology research scientists:

  • Communication: As a research scientist, “you must be able to communicate scientific information to both technical and non-technical people,” Auclair says. For this reason, professionals should work to hone their verbal and written communication styles, focusing specifically on the variances in each depending on which audience they’re interacting with.
  • Presentation Ability: Research scientists must be able to present their findings clearly and concisely to a variety of different audiences, ranging from fellow scientists to investors to C-suite executives. Research scientists must be comfortable in front of a group and know how to speak about their experiments and conclusions in an engaging and informative way.
  • Teamwork: Although one might think a research scientist’s work is very siloed, today’s professionals must be very comfortable working with others in a lab environment. They must become comfortable sharing ideas, providing feedback to others in their cohort, and tweaking their experiments based on contributed findings.

Northeastern offers students the chance to explore each of these core “power skills” during their time within the master’s in biotechnology program. For example, the university offers countless opportunities for students to collaborate with and present to classmates, instructors, and even industry-leading organizations through Northeastern’s experiential learning opportunities, giving them the chance to apply these skills in both classroom and real-world situations early on.

Learn More: How to Become a Biotechnologist: Build Your Soft Skills

4. Obtain hands-on experience.

One of the most effective ways an aspiring research scientist can prepare for a career in this field is to obtain experiences working in a real lab. While finding these kinds of opportunities can be difficult for those just breaking into the field, programs like Northeastern’s MS in biotechnology bake hands-on learning directly into the curriculum. 

“Students do essentially four to six months [working in the] industry, and put what they learn in the classroom…into practice,” Auclair says.

These opportunities, known as co-ops , provide students with the chance to work within top organizations in the industry and explore the real-world challenges of the field from inside a functioning lab.

Did You Know: Northeastern’s program provides students with exposure to the tools and equipment used within labs in the industry. This access to cutting-edge technology reduces the learning curve and allows students to dive into their work as soon as they graduate.

Another unique way Northeastern provides hands-on experience is through Experiential Network (XN) Projects . Students who participate in these projects are typically paired with a sponsor from an active biotech company that has a real-world problem they need to solve. Then, “under the guidance of a faculty member, students spend the semester trying to come up with solutions to that problem,” Auclair says. “It’s all student-driven.”

Hands-on learning opportunities like these give students a competitive advantage when it comes to applying for jobs. “The experiential learning piece [of our program] is what has our students actually stand out above others in the field,” Auclair says, because employers like to see that their candidates are capable of applying their skills in a real-world environment. 

5. Grow your network.

Research shows that 85 percent of all jobs today are filled through networking, making it more important than ever for professionals across industries to invest time and energy into building these vital relationships.

Professionals hoping to establish a career as a research scientist are no exception. These individuals should aim to develop connections with organizations and individuals within the greater biotech industry early on in their careers, and use those relationships to help carve their path forward.

Northeastern’s master’s in biotechnology program has strategically created many great opportunities for students to network throughout their time in the program. They are encouraged to build relationships with their classmates, guest speakers, faculty, and even the industry leaders they meet through co-ops and XN projects. As a result, they establish various impactful connections with individuals at different stages in their careers, all before they graduate.

Learn More: Networking Tips for Scientists

Another way Northeastern’s program supports networking is through opportunities for student/faculty collaboration. “We encourage our students to interact with our own faculty who are research scientists as much as possible, whether that’s volunteering in their lab or finding a half an hour to talk to them about what they’re doing,” Auclair says. “We want our students to be exposed to as many research scientists as possible while they’re in the program.”

Take the Next Step

Pursuing a master’s degree in biotechnology from a top university like Northeastern is a great way for aspiring research scientists to break into the field. Students in these programs can hone related skill sets, grow their professional networks, and experience hands-on learning, all while pursuing graduate-level education. 

Learn more about how a master’s in biotechnology can set you up for success as a research scientist on our program page , then get in touch with our enrollment coaches who can help you take the first step.

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How To Become A Scientist: A New Scientist Careers Guide

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What does a scientist do?

What does a scientist do?

Scientists are, by definition, individuals who study and gain expertise in one of the natural sciences: biology , chemistry , physics , astronomy and earth sciences . Each of these five main natural sciences has its own subdivisions, and the scope of work will vary for each subdivision. 

As a scientist, you will study and research a topic within one of these fields, often in great detail. Research scientists are essentially experts in specific topics within their fields.

However, even though there are many different types of scientists, the responsibilities of all research scientists are very similar.

Most scientists will need to propose their own research and gain funding for it from relevant organisations. As a scientist, you will therefore need to write up research proposals and funding applications. 

Once you start your research, you may conduct it in a lab, out in the field, or in a specialised facility, depending on the research topic. When you obtain results, you will then need to analyse them and present them to other scientists, as well as write up research papers to publish in journals or books. 

Being a scientist can be a very gratifying job, as you will often help in the development of new products. For instance, you might develop new tests as a biomedical scientist , advance technologies like artificial intelligence (AI) or work with machine learning as a computer scientist, or produce new medical guidelines as a clinical scientist .

You will also support scientists and workers in other disciplines. For example, as a data scientist you will analyse large sets of data to produce insights into datasets that may then be used in further scientific research.

How to become a scientist

Becoming a scientist requires a lot of studying and researching. Y ou wi ll need to complete an undergraduate degree in the field you woul d like to work in. F or example, if you woul d like to become a forensic scientist you should study forensic science or a related subject such as criminology. 

To obtain an undergraduate degree in a specific science, you will often need to have A levels or equivalent in particular subjects. For example, if you want to apply for a degree in biology, you will need A level biology. 

However, if you only decide what you would like to do after your secondary education, some universities offer foundation year degrees, aimed at those who don’t have a relevant A level or equivalent qualification.

After completing a bachelor’s degree, many aspiring scientists choose to do a master’s degree, and many scientists eventually also obtain a doctorate, but how common this is depends on the field.

It is important to gain some hands-on experience during your studies to become a scientist, regardless of the speciality you choose. This is because in addition to knowledge and qualifications, scientists also need to develop skills such as problem-solving, effective communication and teamwork.

Some industries, such as data science or computer science , offer postgraduate job posts for people straight out of university. These are often designed as training posts, where you will complete a training programme rotating between different teams in the company before becoming a permanent employee.

Additionally, some companies offer their employees the opportunity to undertake a fully- or partially-funded masters or even a PhD while working.  

How long does it take to become a scientist?

The exact duration of training depends on the field of study you choose. However, for most scientist jobs , it will take at least three to four years to complete the required undergraduate degree. 

It is common to then take a year to complete a master’s degree, and many scientists also undertake a PhD which can last around three to five years.

So, depending on the route you choose, you could spend between three and 10 years in education. But, for example, if you do a PhD, you will be working independently as a research scientist during that time, and will be paid for your research.  

A day in the life of a scientist

Different scientists will spend their days in different work environments and may carry out a variety of different specific tasks. Nevertheless, the broad responsibilities are often similar for many scientists across different fields of study.

For example, most research scientists will need to do tasks like proposing projects, designing and carrying out experiments in a lab or out in the field, and writing up and presenting the findings.

Other types of scientists, like engineers or computer scientists, will also need to propose projects, but they will focus less on data collection and interpretation, and more on developing new technology .  

Scientist: Career options

S cientist s work around 40 hours a week. Depending on which field they work in and what kind of role they take on , they may need to work some evenings, weekends or bank holidays, and some might even work unsocial hours. For example, research scientists will often need to spend weekends doing administrative work , forensic scientists may be called out on weekends or during the night, and computer scientists may need to work out of hours to finish projects on time.

There are many directions your science career can take. These narrow down as you choose your scientific field and subspeciality.

For example, if you know you want to study life sciences, or more specifically be a scientist in a biology-related field, you could become anything from a molecular biologist , a zoologist or a wildlife biologist to a climate change scientist.

Similarly, if you would like to study physics or maths, you might become an astrophysicist, an applied mathematician , a statistician or even an engineer.

Within most academic-oriented science careers, the natural career progression is from academic research scientist to senior research fellow, and eventually professor. This progression will require an increasing level of independence and you will need to publish original research and lead research teams to become a professor. 

As a scientist, you may also work in a more industrial setting. For example, pharmacologists often work in large pharmaceutical companies, where they help to design and research new medication, or produce already established pharmaceuticals .

Other fields, such as physics, computer science or even medical science, may have less of a research focus as you progress, and more of an applied component. For instance, as a geneticist you might progress from researching molecular genetics to a career in medical genetics and advising on genetic conditions. 

Or, as a computer scientist, you might take on managerial roles as you become more senior and lead a team of junior computer scientists to develop new software or systems.

In summary, a career in science is broad and offers many opportunities, whichever field you choose.  

How much does a scientist earn in the UK and the US?

As a research scientist in the UK, you might earn between £17,688 and £43,000 depending on your level of expertise. However, this will vary between different scientific fields. 

In the US, the salary range for a scientist is large, starting from around $50,700 to $132,100 for the best paid roles. This will, as in the UK, vary depending on your expertise, specialisation and workplace.  

References:

  • National Careers Service. Research Scientist. Available from: https://nationalcareers.service.gov.uk/job-profiles/research-scientist 
  • Get Educated. How to become a scientist. Available from: https://www.geteducated.com/careers/how-to-become-a-scientist/#/ 
  • Career explorer. Comprehensive list of science related careers and degrees. Available from: https://www.careerexplorer.com/careers/scientist/#comprehensive-list-of-science-related-careers-and-degrees 
  • Careers Wales. Scientist: How to become. Available from: https://careerswales.gov.wales/job-information/scientist/how-to-become 
  • Career explorer. Scientist salary. Available from: https://www.careerexplorer.com/careers/scientist/salary/

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Definition of a Research Scientist

What does a research scientist do, key responsibilities of a research scientist.

  • Designing and implementing rigorous experiments to test hypotheses and solve complex problems.
  • Collecting, analyzing, and interpreting data using statistical techniques and specialized software.
  • Writing research papers, reports, and reviews for publication in scientific journals and presentations at conferences.
  • Applying for funding and grants to support research projects and initiatives.
  • Collaborating with interdisciplinary teams of scientists and professionals to enhance research quality and applicability.
  • Staying current with the latest scientific advancements and literature in their field of expertise.
  • Developing and testing new scientific methods and technologies to improve research efficiency.
  • Mentoring and supervising junior researchers, technicians, and graduate students.
  • Ensuring all research activities are conducted in compliance with ethical and regulatory standards.
  • Reviewing and providing feedback on the work of peers to validate research findings and proposals.
  • Communicating with stakeholders, including industry partners, government agencies, and academic institutions.
  • Translating research discoveries into practical applications and products for industry or societal use.

Day to Day Activities for Research Scientist at Different Levels

Daily responsibilities for entry level research scientists.

  • Conducting experiments and recording detailed observations
  • Assisting with literature reviews and data collection
  • Performing basic data analysis and interpretation
  • Maintaining laboratory equipment and ensuring supplies are stocked
  • Participating in lab meetings and presenting findings
  • Complying with lab safety protocols and regulatory requirements
  • Receiving training in research methodologies and best practices

Daily Responsibilities for Mid Level Research Scientists

  • Designing and leading their own experiments or sub-projects
  • Writing grant proposals and securing funding for research
  • Authoring and co-authoring scientific papers and reports
  • Presenting research findings at conferences and seminars
  • Collaborating with cross-functional teams within and outside the organization
  • Mentoring entry-level scientists and research assistants
  • Contributing to the development of research strategies and objectives

Daily Responsibilities for Senior Research Scientists

  • Leading and managing major research projects and collaborations
  • Developing and directing research strategies and priorities
  • Mentoring and supervising mid-level scientists and research teams
  • Securing substantial funding and managing budgets for research activities
  • Establishing partnerships with industry and academia
  • Advising on policy and contributing to the broader scientific community
  • Reviewing scientific manuscripts and serving on editorial boards

Types of Research Scientists

Theoretical research scientist, experimental research scientist, clinical research scientist, data research scientist, applied research scientist, environmental research scientist, what's it like to be a research scientist , research scientist work environment, research scientist working conditions, how hard is it to be a research scientist, is a research scientist a good career path, faqs about research scientists, how do research scientists collaborate with other teams within a company, what are some common challenges faced by research scientists, what does the typical career progression look like for research scientists.

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A Career as a Research Scientist

Conduct research on biomedical mechanisms, diagnosis and therapy, population and outcome medicine, health policy or health services

Work at Academic Health Centers, Hospitals, Federal laboratories, or Biotech/Pharmaceutical industry

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What is a research scientist and how to become one

introduction image

A research scientist conducts scientific experiments and research to discover new knowledge or improve existing theories. They work in various fields such as biology, chemistry, physics, and engineering. Research scientists conduct experiments, analyze data, and interpret findings to develop hypotheses and theories. They collaborate with other scientists to share knowledge and expertise, publish papers and articles, and present their research. Research scientists also contribute to the development of new technologies and applications that can benefit society.

What experience really stands out on Research Scientist resumes?

Distinguished University Professor and Co-chair, Case Western Reserve University

How long does it takes to become a research scientist?

It takes approximately 8 to 10 years to become a research scientist.

Year 1-4: Bachelor's Degree Year 5-8: Doctorate Degree Year 9-10: Postdoctoral Experience or On-the-Job Training

Alexandra (Sasha) Ormond Ph.D. , Associate Professor of Chemistry and Director of Dual Degree Engineering at Meredith College, emphasizes the importance of transferable skills and impact, "Students need to add a metric to their descriptions and how they have made an impact on a project, a job position, an organization, etc." She also highlights the necessity of hard skills, "Employees that are likely more attractive for a job position than another person have had the independent experience of working with instruments and can troubleshoot problems."

  • Salary $89,998
  • Growth Rate 17%
  • Jobs Number 93,013
  • Job Satisfaction 3/5
  • Complexity Level Advanced
  • Most Common Skill Python
  • Most Common Degree Bachelor's degree
  • Best State California

Research Scientist pros and cons

Opportunity to make significant contributions to scientific knowledge

Potential for high salary and job security

Possibility of travel to conferences and other research institutions

Personal and professional growth and development

Satisfaction of seeing your research translate into real-world applications

Long and irregular work hours, including nights and weekends

High competition for funding and positions

Pressure to publish and maintain productivity

Limited opportunities for upward mobility or promotion within academia

High levels of stress and pressure to meet deadlines and expectations

Research Scientist career paths

Research scientists can pursue many career paths. They can become consultants, supervisors, or quality assurance managers. They can also move into leadership roles like research and development managers, case managers, and nursing directors. Some research scientists choose to become scientists or senior scientists, while others become professors, research fellows, or clinical trial managers. They can also work as laboratory managers, quality control managers, or vice presidents of research and development.

Key steps to become a research scientist

Explore research scientist education requirements, most common research scientist degrees.

Bachelor's

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Start to develop specific research scientist skills

Research scientists need a variety of skills to be successful. These include experience developing medical devices and commercialization processes, familiarity with FDA regulatory pathways, and the ability to analyze software, hardware, and network systems for distributed computing. They should also have strong statistical analysis skills, be able to manage laboratory equipment, and have experience with programming languages like Java. Additionally, research scientists need to have excellent interpersonal and empathetic skills, be able to collaborate with others, and have the ability to design and implement adaptive systems for computer-aided analysis and visualization.

Complete relevant research scientist training and internships

Research research scientist duties and responsibilities.

Research scientists perform a wide range of responsibilities, including developing medical devices, commercialization processes, and robust and adaptive systems for computer-aided analysis and visualization. They also analyze software, hardware, and network systems for distributed computing and manage the maintenance/upgrades of laboratory equipment. In addition, research scientists perform assays of and develop analytical methods for carbohydrate and organic chemical analysis and design and implement adaptive fuzzy controllers to enhance performance characteristics. They also study technology implementation in high school math classes, develop efficient HPLC and LCMS methods, collaborate on drug discovery projects, and create open-source data analysis and visualization packages.

  • Manage the development of innovative visualization and concept mapping of contest environment analysis challenges and analyst skill sets.
  • Manage sample inventory via in-house laboratory information management system (LIMS) and implement additional systems for sample and chemical organization.
  • Used real-time PCR and DNA sequencing to troubleshoot and validate SNP base and gene expression assays.
  • Prepare clear technical presentations to NIH department heads in annual seminars.

Prepare your research scientist resume

When your background is strong enough, you can start writing your research scientist resume.

You can use Zippia's AI resume builder to make the resume writing process easier while also making sure that you include key information that hiring managers expect to see on a research scientist resume. You'll find resume tips and examples of skills, responsibilities, and summaries, all provided by Zippi, your career sidekick.

Choose From 10+ Customizable Research Scientist Resume templates

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Apply for research scientist jobs

Now it's time to start searching for a research scientist job. Consider the tips below for a successful job search:

  • Browse job boards for relevant postings
  • Consult your professional network
  • Reach out to companies you're interested in working for directly
  • Watch out for job scams

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Average research scientist salary

The average Research Scientist salary in the United States is $89,998 per year or $43 per hour. Research scientist salaries range between $58,000 and $137,000 per year.

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Exploring more about reseaching field by building knowledge in a certain subject of research and growing the wisdom and knowledge.

The struggle of not breaking a certain research topic.

It's all about getting data, follow up on project, ensuring that jobs are done properly, write reports after a project is done. You travel if the job or project you're handling is out station.

Nothing really, it's just that sometimes getting data can be very difficult

What I like is that,you get to interact with different people from various communities.Relationships are formed in the process

Research Scientist FAQs

Do you need a ph.d. to be a research scientist, how long does it take to become a research scientist, what degree do you need to become a researcher, what does a research scientist do daily, search for research scientist jobs, research scientist jobs by state.

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Updated April 5, 2024

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Research Development Career News

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How to become a research scientist.

become a research scientist

Research scientists champion investigative efforts to tackle deficits in scientific knowledge. They require exceptional analytical and problem-solving skills to uncover new information. They also need to be able to communicate their findings effectively.

To start building these skills, professionals should consider getting involved in research projects. This may include working with professors or mentors who can recommend internships or summer programs.

How to become a research scientist

Table of Contents

To become a research scientist, you need to have the right set of skills and qualifications. These include a bachelor’s degree in a science-related field, such as biology, chemistry, or physics. A master’s or doctoral degree in a specialized area of research is also helpful. Other important qualifications include strong analytical and problem-solving skills, as well as effective communication. It is also helpful to network with other researchers and attend conferences.

Research scientists work in a variety of fields and industries, including academia, government agencies, and private companies. They are responsible for conducting experiments and analyzing results. They may also be required to write research papers and applications for new funding. They must also adhere to strict regulations and laws related to their field of study.

Degree requirements

A Bachelor’s Degree is typically the minimum requirement for most research scientist jobs. However, many professionals pursue a Master’s Degree in their area of expertise to further their career. This graduate program offers advanced coursework, internships, and research opportunities to improve a candidate’s knowledge and skills in their field of study.

Applied research scientists are tasked with the implementation of clinical trials to identify potential medical interventions. This role requires strong interpersonal communication to work alongside other researchers and healthcare staff. Moreover, these professionals must possess the ability to analyze data and write reports. They also need to stay updated with the latest technological advancements in their field of work. This can be done by engaging in collaborative research projects and attending professional conferences.

Education requirements

You’ll need a good honours degree or equivalent in a science subject to get into life sciences research. You’ll also need a postgraduate qualification such as an MSc or PhD, particularly for higher-level roles. Many researchers take on additional responsibilities such as managing junior Research Scientists or attending risk assessment workshops and controlling substances hazardous to health (COSHH) training.

Graduate programs offer advanced coursework and research opportunities. You can select a specialized area of interest, such as computer science or artificial intelligence, to tailor your curriculum and increase your job prospects.

A Ph.D is a standard credential, but you can pursue a career in research without one. This is possible through a combination of education, skills and industry experience. Some programs integrate hands-on experiences in a real lab into their curriculum.

Career as a research scientist

Research scientists make discoveries that impact the lives of people all over the world. They may work in a variety of fields, including biology, chemistry, and psychology. Some even have leadership responsibilities, such as overseeing other scientists and planning experiments.

become a research scientist

Those wishing to become a research scientist must complete a relevant degree and have significant laboratory experience. Many research scientists are employed on fixed-term contracts associated with specific projects, so it is important to develop connections within the industry early on. Many research scientists also choose to pursue further qualifications, such as a PhD, which will improve their career prospects. In addition, it is essential to learn new laboratory techniques regularly. This can be achieved through self-teaching or attending seminars. It is also useful to read publications and articles on current research.

Jobs salary

Research scientists work in many different areas, including biology and chemistry. They design experiments and analyze the results to develop hypotheses and theories. They also collaborate with other scientists to share knowledge and expertise. They may also write and publish research articles and presentations.

Research scientist salaries can vary depending on location, company, and experience level. Startups often have a more flexible culture that encourages innovation, while large tech companies like Amazon and Deepmind offer more structured career advancement pathways.

The most important factor in becoming a research scientist is having a strong background in scientific and analytical problem-solving. This includes a degree in your field of study, and internships or volunteer opportunities that can help you gain laboratory experience. It is also helpful to network and stay up-to-date on the latest advancements in your field.

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The importance of cryptocurrency research.

Importance of Cryptocurrency Research

Cryptocurrency research plays a pivotal role in understanding the various aspects of this emerging digital financial system. This article aims to highlight the significance of conducting thorough research in the field of cryptocurrencies.

It will delve into the evolution of cryptocurrencies and the importance of comprehending market trends and analysis. Furthermore, it will explore the potential of blockchain technology and the need for assessing risks and implementing security measures.

Lastly, it will address the regulatory challenges that arise in the cryptocurrency space.

Importance of Cryptocurrency Research

The Evolution of Cryptocurrencies

The evolution of cryptocurrencies has been a subject of significant scholarly inquiry, with researchers analyzing the various stages of development, technological advancements, and market dynamics.

Cryptocurrency adoption has witnessed a remarkable surge in recent years, with an increasing number of individuals and businesses recognizing the potential benefits of digital currencies. These decentralized digital assets have the potential to revolutionize traditional financial systems by offering greater financial freedom and autonomy.

Cryptocurrencies enable peer-to-peer transactions without the need for intermediaries, thus reducing transaction costs and increasing efficiency. Additionally, they offer individuals the opportunity to maintain control over their own financial assets, bypassing traditional banking systems.

However, the impact of cryptocurrencies on traditional financial systems is still a topic of debate. While some argue that cryptocurrencies pose a threat to the stability and control of centralized financial institutions, others believe that they can coexist and even complement traditional financial systems.

Further research is needed to fully understand the implications and potential benefits of cryptocurrency adoption on traditional financial systems.

Understanding Market Trends and Analysis

Understanding market trends and analysis in the field of cryptocurrency allows for informed decision-making and strategic investment opportunities.

Investment strategies and technical analysis techniques are essential tools in this process. Investment strategies involve identifying and evaluating potential investment opportunities, determining the appropriate allocation of resources, and managing risks.

Technical analysis techniques, on the other hand, focus on analyzing historical price and volume data to identify patterns, trends, and potential future price movements. These techniques include chart analysis, support and resistance levels, and various indicators.

Exploring the Potential of Blockchain Technology

Exploring the potential of blockchain technology requires a comprehensive assessment of its applications across various industries and the benefits it can provide in terms of security, transparency, and efficiency.

Blockchain technology has the potential to revolutionize various sectors, including finance, supply chain management, healthcare, and voting systems.

In finance, blockchain can enhance security by eliminating the need for intermediaries and providing secure and transparent transactions.

Supply chain management can benefit from blockchain’s ability to track and verify the authenticity of products, ensuring transparency and reducing counterfeiting.

Healthcare can leverage blockchain to securely store patient records, enable interoperability, and facilitate secure sharing of medical data.

Voting systems can benefit from blockchain’s decentralized nature, ensuring transparency, immutability, and preventing fraud.

However, future implications of blockchain technology also raise concerns regarding scalability, energy consumption, and regulatory challenges.

A thorough examination of these potential applications and future implications is crucial for harnessing the true potential of blockchain technology.

Assessing Risks and Security Measures

Assessing the risks and implementing appropriate security measures is crucial for ensuring the reliability and integrity of blockchain technology. Risks assessment involves identifying potential vulnerabilities and threats that may compromise the security of the blockchain network.

Cybersecurity measures are essential to mitigate these risks and protect the data stored on the blockchain. These measures may include encryption, secure key management, multi-factor authentication, and regular security audits.

By implementing robust security measures, blockchain technology can provide a secure and trustworthy platform for conducting transactions and storing sensitive data. However, it is important to note that no system is completely immune to risks, and continuous monitoring and updating of security measures are necessary to stay ahead of evolving threats.

To maintain the freedom and integrity of blockchain technology, it is imperative to prioritize risks assessment and implement effective cybersecurity measures.

Importance of Cryptocurrency Research

Navigating Regulatory Challenges in the Cryptocurrency Space

Navigating the regulatory challenges in the cryptocurrency space requires a comprehensive understanding of the legal frameworks and compliance requirements imposed by different jurisdictions around the world.

Government regulations play a crucial role in shaping the cryptocurrency landscape and ensuring regulatory compliance.

As cryptocurrencies gain popularity and attract greater attention from global regulators, it becomes imperative for individuals and businesses operating in this space to stay abreast of the evolving regulatory environment.

Compliance with government regulations is essential not only to avoid legal repercussions but also to foster trust and legitimacy in the cryptocurrency ecosystem.

It is important to recognize that regulatory compliance does not necessarily impede freedom but rather aims to establish a secure and transparent environment for cryptocurrency transactions.

Frequently Asked Questions

Q:  How Can I Invest in Cryptocurrencies?

A: Investing in cryptocurrencies involves understanding the market trends and developing effective strategies. This requires analyzing the volatility, liquidity, and potential risks associated with different cryptocurrencies. It is important to stay updated and make informed decisions based on thorough research.

Q:  What Are the Tax Implications of Owning Cryptocurrencies?

A: The tax implications of owning cryptocurrencies are an important consideration due to government regulations and tax reporting requirements. Understanding these implications can help individuals navigate the legal and financial aspects of cryptocurrency ownership.

Q:  How Can I Protect My Cryptocurrency Investments From Hacking and Theft?

A: The protection of cryptocurrency investments from hacking and theft can be achieved through the implementation of robust cybersecurity measures and the secure storage of private keys. These measures are essential for ensuring the security and integrity of digital assets.

Q: What Are the Environmental Impacts of Cryptocurrency Mining?

A: Cryptocurrency mining has significant environmental impacts due to its high energy consumption. This raises concerns about the sustainability of the process and its contribution to carbon emissions. Research on these environmental effects is crucial for understanding and mitigating the negative consequences.

Q: Are There Any Ethical Concerns Associated With the Use of Cryptocurrencies?

A: Ethical implications and regulatory challenges are associated with the use of cryptocurrencies. These concerns arise due to issues such as money laundering, tax evasion, and lack of transparency. Research is necessary to address these concerns and ensure the responsible use of cryptocurrencies.

In conclusion, cryptocurrency research plays a crucial role in understanding the evolving landscape of digital currencies. By studying market trends and conducting analysis, researchers can gain insights into potential investment opportunities and risks.

Additionally, exploring the potential of blockchain technology can lead to innovative applications and advancements in various industries. It is also essential to assess security measures and navigate regulatory challenges to ensure the integrity and stability of the cryptocurrency space.

Overall, conducting thorough research is of utmost importance in this dynamic and rapidly changing field.

What Is Data Mining?

What Is Data Mining?

Data mining is a process used to extract meaningful patterns and insights from large datasets. It has gained prominence in various fields, such as business, healthcare, and finance, due to its potential to uncover valuable information.

This article provides an overview of the history, key concepts, applications, techniques, and algorithms associated with data mining. Additionally, it discusses the benefits and challenges of implementing data mining techniques.

By adhering to an academic style and eliminating personal pronouns, this introduction aims to provide an objective and impersonal perspective on the topic.

What Is Data Mining?

History of Data Mining

The history can be traced back to the 1960s when statisticians and researchers began exploring methods to extract knowledge and patterns from large datasets. In its early days, DM primarily focused on simple statistical techniques such as regression analysis and clustering.

However, with the advancements in computing power and the exponential growth of data, the field ofDM has evolved significantly. Today, data mining involves the use of complex algorithms and techniques such as decision trees, neural networks, and genetic algorithms to uncover hidden patterns and insights from vast amounts of data.

The future of data mining looks promising, with ongoing research and development in areas such as deep learning, natural language processing, and predictive analytics, which will further enhance our ability to extract valuable information and make data-driven decisions.

Key Concepts in Data Mining

Key concepts in the field, include association rule mining, clustering, and classification. Association rule mining is used for discovering patterns, clustering is used for grouping similar data points, and classification is used for predicting future trends.

The DM process involves several steps. It starts with data collection and preparation, followed by exploratory data analysis, model building, and evaluation.

DM tools are software applications that facilitate these processes. They provide functionalities such as data extraction, transformation, and loading (ETL), as well as algorithms for pattern discovery and predictive modeling.

Popular data mining tools include Weka, RapidMiner, and KNIME. These tools offer a range of functionalities for data preprocessing, feature selection, model building, and evaluation.

Applications of DM

Applications of DM encompass a wide range of domains. In marketing, data mining is used to analyze customer behavior and preferences, enabling businesses to personalize advertisements and promotions.

In finance, DM helps in fraud detection by identifying patterns and anomalies in financial transactions.

Healthcare organizations utilize data mining techniques to predict diseases, improve patient care, and optimize resource allocation.

In telecommunications, it is used to analyze customer usage patterns, predict customer churn, and optimize network performance.

Predictive analytics, a key concept in DM, is employed across these domains to forecast future outcomes based on historical data.

The application of DM in fraud detection is particularly significant, as it allows businesses to proactively identify and prevent fraudulent activities, protecting both financial institutions and consumers.

Techniques and Algorithms in DM

Various techniques and algorithms are employed in the field of DM to extract meaningful patterns and insights from large datasets.

Classification algorithms, one such technique, are used to categorize data into predefined classes or categories. These algorithms analyze the attributes of the data and assign them to the appropriate class based on certain rules or decision boundaries.

On the other hand, clustering techniques aim to group similar data points together based on their inherent similarities or distances. These techniques do not require predefined categories and can discover patterns and structures in the data.

Clustering algorithms use different distance or similarity measures to determine the similarity between data points and form clusters accordingly.

Both classification algorithms and clustering techniques play crucial roles in DM, enabling analysts to uncover valuable knowledge and make informed decisions based on the patterns and insights extracted from large datasets.

What Is Data Mining?

Benefits and Challenges of DM

One of the benefits of employing techniques and algorithms in the field of data analysis is the ability to extract meaningful patterns and insights from large datasets. This can lead to advancements in various fields such as healthcare, finance, and marketing.

However, it is important to consider the ethical implications and data privacy concerns associated with DM. While data mining can provide valuable information, it also raises questions about the collection, storage, and use of personal data. There is a need to strike a balance between the benefits of data mining and protecting individuals’ privacy rights.

Additionally, there is a responsibility to ensure that the algorithms and techniques used in data mining are unbiased and do not perpetuate discrimination or harm. Ethical considerations should guide the development and application of DM techniques to ensure that they are used responsibly and for the greater good.

Q:  Can Data Mining Be Used to Predict Future Trends and Behaviors?

A: Predictive analytics, a subfield of data mining, uses machine learning techniques to analyze historical data and uncover patterns and relationships. By identifying these patterns, it can be used to predict future trends and behaviors with a certain level of accuracy.

Q:  What Are Some Common Ethical Concerns Associated With Data Mining?

A: Common ethical concerns associated with data mining include the potential invasion of privacy, as personal information is often collected without explicit consent. Additionally, there is the risk of discrimination and bias in decision-making processes based on the analyzed data.

Q: How Does Data Mining Differ From Data Warehousing?

A: DM techniques differ from data warehousing in terms of their purpose and processes. While data warehousing focuses on the storage and management of large amounts of data, data mining techniques aim to extract meaningful patterns and insights from the data.

Q: Are There Any Legal Regulations or Frameworks Governing the Use of DM?

A: Legal regulations and frameworks exist to govern the use of data mining. These regulations aim to ensure data privacy and protect individuals’ rights. Compliance with these regulations is necessary to maintain ethical and legal standards in data mining practices.

Q: Can DM Be Used in the Healthcare Industry to Improve Patient Outcomes?

A: Data mining, specifically in the context of healthcare analytics, has the potential to improve patient outcomes through patient monitoring and analysis of vast amounts of data.

In conclusion, DM is a valuable field that has evolved over time to extract meaningful patterns and knowledge from large datasets.

It encompasses key concepts such as association, classification, clustering, and prediction.

Data mining techniques and algorithms, such as decision trees and neural networks, are used to uncover hidden patterns and make accurate predictions.

DM has numerous applications in various industries, including marketing, finance, healthcare, and fraud detection.

While DM offers numerous benefits, such as improved decision-making and increased efficiency, it also poses challenges such as privacy concerns and data quality issues.

What Is Genetic Research?

What Is Genetic Research

Genetic research is a field of scientific inquiry focused on the study of genes and their role in inherited traits and diseases. This article provides an overview of the history, importance, techniques, and ethical considerations in genetic research.

It also explores current and future applications of this research, shedding light on its potential contributions to various fields.

By adhering to an objective and impersonal writing style, this article aims to provide an unbiased and informative account of the fundamental aspects of genetic research.

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The History of Genetic Research

The history of genetic research dates back to the mid-19th century when Gregor Mendel conducted experiments on pea plants and laid the foundation for the study of heredity and genetics.

Since then, genetic research has evolved significantly, leading to major breakthroughs in our understanding of inheritance and the role of genes in determining traits and diseases.

One of the key advancements was the discovery of DNA’s structure by James Watson and Francis Crick in 1953, which provided a framework for understanding how genetic information is stored and transmitted.

Another important breakthrough was the development of recombinant DNA technology in the 1970s, which allowed scientists to manipulate and study specific genes.

These advancements have paved the way for numerous advancements in medical genetics, agricultural genetics, and evolutionary genetics, revolutionizing our understanding of the natural world and offering new possibilities for improving human health and well-being.

The Importance of Genetic Research

One cannot underestimate the significance of studying and understanding the intricacies of genetic information for advancements in various scientific disciplines.

Genetic research has had a profound impact on healthcare, revolutionizing the way diseases are diagnosed and treated. By studying genetic information, researchers have been able to identify specific genetic markers that are associated with certain diseases. This has allowed for the development of personalized medicine, where treatments can be tailored to an individual’s unique genetic profile. This approach has proven to be more effective and efficient, as it takes into account the individual variations in genetic makeup that can influence the effectiveness of certain treatments.

Genetic research has also contributed to advancements in preventive medicine, allowing for the identification of individuals who may be at a higher risk for certain diseases and enabling interventions to minimize or prevent the occurrence of these diseases.

Overall, genetic research has played a pivotal role in transforming healthcare and has opened up new possibilities for personalized and targeted treatments.

Key Techniques and Methods

Key techniques and methods used in the study of genetics include genome sequencing, polymerase chain reaction (PCR), and gene expression analysis.

Genome sequencing allows for the determination of an organism’s complete DNA sequence, providing valuable information about genetic variations and disease susceptibility.

PCR is a technique used to amplify specific DNA sequences, enabling researchers to study and manipulate specific genes of interest.

Gene expression analysis helps to understand how genes are regulated and how they contribute to various biological processes.

These techniques have numerous applications in fields such as medicine, agriculture, and forensics.

Ethical considerations are important, especially regarding the use of human subjects and the potential for misuse of genetic information.

The future advancements in genetic research include improved sequencing technologies, gene editing techniques, and personalized medicine.

The history of genetic research dates back to Gregor Mendel’s experiments with pea plants in the 19th century, which laid the foundation for our understanding of inheritance.

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Ethical Considerations

Ethical considerations play a crucial role in the study of genetics, particularly regarding the use of human subjects and the potential for misuse of genetic information.

Genetic research has the potential to uncover valuable information about the human body, diseases, and potential treatments. However, it also raises ethical implications and privacy concerns.

The use of human subjects in genetic research must adhere to strict ethical guidelines to ensure their rights are protected, such as informed consent, confidentiality, and the right to withdraw from the study at any time.

Additionally, the potential misuse of genetic information, such as discrimination in employment or insurance, underscores the need for strong privacy protections.

Striking a balance between advancing scientific knowledge and safeguarding individual rights is of paramount importance in the field of genetic research.

Current and Future Applications

Advancements in the field of genetics have led to a wide range of applications in various domains, including medicine, agriculture, and forensic science. Genetic engineering, in particular, has revolutionized the field of medicine by allowing for the development of personalized medicine. This approach involves tailoring medical treatments to an individual’s unique genetic makeup, providing more targeted and effective therapies.

By understanding the genetic variations that contribute to certain diseases, researchers can develop treatments that specifically target those variations, reducing side effects and improving patient outcomes. In addition to personalized medicine, genetic engineering has also played a significant role in agriculture, allowing for the modification of crops to enhance their nutritional content and resistance to pests and diseases.

Furthermore, genetic analysis techniques have been instrumental in forensic science, enabling the identification and profiling of individuals based on their DNA. These advancements in genetic research have the potential to greatly impact various fields, offering new possibilities and improving outcomes in medicine, agriculture, and forensic science.

 Frequently Asked Questions

Q:  How Has Genetic Research Contributed to Advancements in Medicine and Healthcare?

A: Genetic research has made significant contributions to advancements in medicine and healthcare. Through the identification of disease-causing genes, researchers have been able to develop targeted therapies and personalized medicine, resulting in improved patient outcomes and the prevention of hereditary diseases.

Q:  What Are the Potential Risks and Dangers Associated With Genetic Research?

A: Potential ethical, legal implications and public perception are important considerations when examining the risks and dangers associated with genetic research. These aspects must be carefully addressed to ensure the responsible and ethical conduct of such research.

Q:  Can Genetic Research Be Used to Predict an Individual’s Future Health Conditions?

A: Future health predictions using genetic research raise ethical implications. While it is theoretically possible to predict an individual’s future health conditions, the accuracy and reliability of such predictions remain uncertain, warranting further research and consideration.

Q: How Does it Impact the Understanding of Human Evolution?

A: The impact of it on the understanding of human evolution can be observed through its contributions to anthropology and genetic diversity analysis. This field has provided insights into the genetic history and migration patterns of human populations, enhancing our understanding of human evolution.

Q: What Are the Limitations and Challenges Faced in Conducting Genetic Research?

A: Limitations and challenges in conducting genetic research include ethical concerns, privacy issues, sample size limitations, technical limitations, and data analysis challenges. These factors can impact the accuracy, reliability, and generalizability of genetic research findings.

What Is Genetic Research

In conclusion, it has a rich history and plays a vital role in various fields of study. Through key techniques and methods, researchers have made significant advancements in understanding genetic traits and diseases.

However, ethical considerations must be carefully addressed to ensure the responsible use of genetic information.

The current and future applications of genetic research hold immense potential for improving healthcare and addressing pressing global challenges.

Overall, it continues to be a dynamic and evolving field that offers great possibilities for scientific discovery and innovation.

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Research Scientist Career Guide

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What is a research scientist?

A research scientist is a complex role found in various industries, including, but not limited to, healthcare, academia, environmental science, and technology. They engage in rigorous and methodical exploration in their field of specialty, seeking to develop new knowledge, products, or technology. These professionals contribute significantly to expanding our understanding of the world, leading to breakthroughs in a variety of sectors.

The work performed by research scientists can directly influence new policies, invent lifesaving medicines, contribute toward environmental sustainability, or drive technological developments. Their value revolves around advancements, change, and progress in the scientific community.

Duties and responsibilities

A research scientist is responsible for designing, conducting, and analyzing experiments or research projects. This involves developing research methodologies, recording detailed observations, and interpreting and analyzing data. They also make adjustments to research processes as necessary to achieve optimal results.

Additionally, they present findings in scholarly papers, technical reports, or scientific conferences. They collaborate with industry or business leaders, policy-makers, or nonprofit organizations to apply the results of their research and contribute to writing grant proposals to secure funding.

Work environment

A research scientist typically operates in a laboratory, field, or office setting, depending on their area of professional focus. In laboratories, they use technical equipment, rigorously studying chemicals, biological samples, or physical phenomena. Field scientists may work in varied and often challenging geographical settings, studying environmental organisms or the earth’s physical features. Office-based research scientists pour over data, write reports, and develop computational models.

Their work environment is usually collaborative, as research scientists often work as part of a team of scientists and other professionals. Their workdays are heavily structured around the precise procedural demands of scientific research, and there may be strict deadlines for project milestones or report submissions.

Typical work hours

Research scientists typically work full-time. Similar to other professions, this usually means a 40-hour work week. However, the nature of scientific research may sometimes demand extended working hours. Monitoring ongoing experiments or meeting tight project deadlines may necessitate working late into the evening or even over weekends.

For those working in field research, their schedule can be deeply impacted by the requirements of the study. This may entail early mornings, late nights, or extended periods away from home. Researchers may have additional teaching responsibilities in academic settings that can alter their schedule during the academic year.

How to become a research scientist

This career guide section outlines how to become a research scientist. Preparing yourself for a successful career as a research scientist includes specific steps involving education, hands-on research, and professional advancement.

Step 1: Earn a bachelor’s degree

Begin your journey toward becoming a research scientist with a bachelor’s degree in a related field. This could include biology, chemistry, physics, or another science-related domain. This undergraduate journey will offer a foundational understanding of scientific principles and methods.

Step 2: Acquire laboratory experience

Relevant experience, particularly within a laboratory, is beneficial. This could be gained through undergraduate laboratory courses or internship placements within scientific research labs. Here, you will learn to use scientific apparatus, follow safety protocols, and perform experimental procedures.

Step 3: Pursue a master’s degree

While not always required, a master’s degree in a related field could enhance your qualifications and open up opportunities for higher-level research projects. It’s common for aspiring research scientists to specialize in their area of interest at this stage.

Step 4: Obtain a Ph.D.

A Ph.D. is usually mandatory for most research scientist positions, especially those in academia. This degree involves in-depth research within your chosen field, thereby equipping you with profound knowledge and research expertise.

Step 5: Complete postdoctoral training

After earning a Ph.D., it’s common to undertake postdoctoral training, which involves working on advanced research projects under the supervision of experienced research scientists. It allows you to gain extensive practical experience, sharpen your research skills, and develop a track record of published research—making you more competitive in the job market.

Step 6: Apply for jobs

With a Ph.D. and postdoctoral training under your belt, you’re ready to seek out research scientist positions. Depending on your interest, these jobs can be found in academic institutions, government agencies, or private sector companies dedicated to research and development.

How much do research scientists make?

Research scientist salaries vary by experience, industry, education, location, and organization size. Total compensation is dependent mainly on the field of research, the scope of projects, and the level of impact on scientific advancement.

Highest paying industries

  • Pharmaceutical and Medicine Manufacturing – $105,430
  • Scientific Research and Development Services – $100,790
  • Government – $97,230

Highest paying states

  • California – $114,600
  • New Jersey – $111,140
  • Washington – $103,390
  • Connecticut – $97,370
  • Texas – $96,150

The average national salary for a Research Scientist is:

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Types of research scientists

This career guide section highlights the various career types and areas of specialization for research scientists. Below, we highlight the unique attributes and responsibilities of each job title.

Industrial research scientist

Working in private sector industries, such as pharmaceutical companies or technology corporations, is something industrial research scientists often do. Their primary role involves conducting experiments or investigations to develop new products, improve existing ones, or explore theoretical advancements.

Academic research scientist

As the name suggests, the professional domain of academic research scientists is the global realm of higher education. They are involved in groundbreaking research projects while performing a broad range of other duties, such as teaching, mentoring students, and writing grant proposals.

Government research scientist

These professionals dedicate their time and effort to projects commissioned by governmental bodies. Their tasks could lead scientists to research public health matters, environmental issues, or national security, helping to inform government policy.

Clinical research scientist

Within the healthcare sector, clinical research scientists play an invaluable role. Their primary responsibilities include designing, implementing, and interpreting the results of clinical trials, all to advance medical understanding and improve patient care.

Field research scientist

Field research scientists take the lead when it comes to outdoor explorations and conducting investigations in natural settings. They are usually involved in geology, biology, or climate science, where extensive fieldwork is integral to their research.

Top skills for research scientists

This section outlines the primary skills and traits needed for career success as a research scientist. The role of a research scientist often requires a combination of technical and soft skills, including analytical ability, communication skills, and teamwork.

Analytical ability

Research scientists need strong analytical abilities to design, conduct, and evaluate experiments using complex statistical analysis. This means they must not only understand the methods and theories behind these experiments, but also be able to interpret and communicate the results in a meaningful way. An analytical mind is vital for examining elements, synthesizing information and draw insightful conclusions.

Communication skills

Communication skills are integral to the role of a research scientist, who must effectively communicate their findings to colleagues, the public, and other stakeholders through both written and oral presentations. Reports, academic papers, presentations at conferences or to investors, and informal discussions require strong communication skills. Explaining complex ideas in a clear and accessible manner is essential.

Often, research is not a solitary endeavor. It involves working in teams made up of diverse disciplines and backgrounds. Thus, being able to work effectively with others is vital. Collaborative and cooperative behavior can significantly improve the efficiency and success of a research team’s efforts.

Problem-solving skills

Unforeseen challenges are often part of research. A good research scientist must be composed and adaptive in the face of problems, frustration, or failure. Their problem-solving aptitude is paramount in creating innovative solutions and continuously pushing the boundaries of their work. They need to be critical thinkers who can evaluate different approaches and find the most effective method to solve problems and answer questions.

Technical skills

A research scientist must possess relevant technical skills, including knowledge in a specific scientific field, laboratory procedures, and the ability to use specialized research tools and equipment. Depending on the scientific discipline, this could involve biotechnology practices, programming capabilities, or advanced statistical tools proficiency. Staying updated with new technologies and tools can significantly assist in more effective and efficient research.

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Research scientist career path

After several years of conducting experiments and research, it’s common to move on to other roles within the scientific community. These will likely still be research-based but with additional responsibilities and leadership.

Becoming a project manager is attainable after gaining relevant work experience. This role involves the management of projects and supervising a team of researchers. It calls for a deeper comprehension of project planning, budgeting, and team coordination. If scientists prefer to advance within their fields without assuming administrative duties, a career in specialized research may present extended opportunities.

Establishing a reputation for proficiency and reliability can lead to an invitation to join a scientific advisory board. On such boards, members provide guidance based on their professional expertise and knowledge of scientific trends. These individuals play a critical role in influencing organizational decisions and directing future investigations.

Those inclined toward teaching could transition into academia, where they can use their skills and knowledge to educate aspiring scientists. Universities and research institutions offer opportunities to divide one’s time between teaching and research, which is a rewarding career route for many.

Becoming an independent consultant is also an avenue for experienced scientists. This involves sharing your expertise with various organizations, often as part of a team formed specifically for a project. This role often demands extensive travel and flexible working hours.

  • Data Scientist
  • Medical Science Liaison
  • Laboratory Analyst
  • Quality Analyst
  • Computer Scientist
  • Biostatistician
  • Environmental Scientist

Position trends and outlook for research scientists

Recently, a trend has been leaning toward cross-disciplinary research, where firms merge different study areas to achieve more comprehensive and impactful results. Biotechnology, data science, and artificial intelligence have seen a substantial inflow of research scientists. Also, increased stress on environmental sustainability has led to a surge in demand for research scientists in fields related to climate change, alternative energy sources, and waste management.

The digital revolution has heavily impacted this profession. With the mounting amount of data available, research scientists must be proficient in data analytics tools to handle and interpret large datasets. Technological disruptions require constant up-skilling in digital literacy, making lifelong learning almost mandatory in this profession. Scientists are increasingly conducting and sharing their research online, contributing to the trend of open science, where findings are freely accessible to the public.

Employment projections

According to the Bureau of Labor Statistics, the overall employment of research scientists is projected to grow 21 percent through 2031, significantly faster than the average for all occupations. Increasingly, the workforce is expected to demand higher levels of education and training. With increased public awareness of environmental and public health issues, there will be a boost in demand for professionals in these particular research areas. The role of a research scientist promises potential growth in the future with ample opportunities for career advancement.

Research scientist career tips

Understand the big picture.

As a research scientist, your primary task will involve looking into the finer details of various study areas. It’s essential, however, to regularly take a step back and comprehend the larger implications of your work. Develop a clear perspective of how your research pertains to more significant questions – a practice that will aid you while framing your direction and communicating findings to non-specialists.

Invest time in programming and data analysis

Data interpretation is a significant aspect of research. Familiarize yourself with software such as R, Python, and SQL, which are popular in research. These tools can augment your ability to interpret and visualize complex data, making you a more effective researcher. Continuous learning of trending technological tools can provide a competitive edge in your career.

Become acquainted with writing research grants

Funding is a critical aspect of scientific research. Understanding how to write a compelling research grant proposal that can secure necessary funding is vital for every research scientist. Work on developing this skill early in your career, as it will help you implement your ideas and make you more employable.

Build a professional network

A strong network can open avenues for collaborative projects, provide learning opportunities from various wisdom wells, and even help secure funding. Do not limit your networking to conferences and seminars; take advantage of digital platforms as well.

  • American Association for the Advancement of Science (AAAS)
  • The National Association of Science Writers (NASW)
  • Society for Science & the Public
  • American Chemical Society (ACS)
  • American Institute of Biological Sciences (AIBS)

Continuous learning

Science is ever-evolving; hence, the learning curve for a research scientist is constant. Stay updated with the latest research techniques, tools, and discoveries in your specialty area. This consistent learning will enhance your skills and progress your career.

  • Courses and certifications in data analysis and programming languages
  • Participation in seminars and workshops related to your field of research
  • Engaging with scientists’ blogs, podcasts, and webinars for the latest research developments
  • Taking advantage of every learning opportunity in high-tech lab equipment and software

Where the research jobs are

Top employers.

  • Massachusetts

Top job sites

  • ResearchGate

What is the primary role of a research scientist?

A research scientist plans and conducts experiments, analyzes data, interprets results, and prepares related reports. The job involves developing and testing theories, using a broad range of methods to gather data, and ensuring the accuracy of their findings.

What skills are important for a research scientist?

A research scientist must possess strong analytical skills, as much of the job involves analyzing data sets and interpreting findings. Other vital skills include problem-solving to aid in forming theories and conducting experiments and written and verbal communication skills for presenting findings to colleagues, stakeholders, or the scientific community.

What competencies are required for a research scientist?

Besides technical expertise, a research scientist needs mastery of scientific methodologies, attention to detail in experiments, and data analysis competencies. The ability to work independently and as part of a team, the flexibility to handle changing priorities, and the capacity to remain updated with scientific advancements are also important.

Do research scientists work in teams?

Yes, research scientists often work in teams to conduct and analyze experiments. Collaborating with other scientists can facilitate complex projects, bring different perspectives, and improve the rigor of results. A team may include other scientists, research associates, lab technicians, and interns.

What level of education is required to become a research scientist?

Generally, a research scientist holds a doctoral degree in their specific field of science. Before pursuing a doctorate, they gain a solid foundation through a bachelor’s degree and often a master’s degree in a related field. Some positions also require postdoctoral experience. However, different fields and organizations can have distinct educational requirements.

What are the long-term career development opportunities for a research scientist?

The career development path for a research scientist can be quite versatile, depending on the area of study. Opportunities can include becoming a senior scientist, a research director, or pursuing an academic career. Some research scientists choose to transition into related roles such as project management, scientific consulting, or even science writing.

What challenges should a research scientist expect in their career?

Research scientists can face several challenges, including securing funding for research projects and competitions for employment and recognition in their field. In addition to these, they often need to stay updated with the latest relevant scientific advancements and be able to adapt to changes in research methodologies. Another common challenge is the time-consuming nature of conducting extensive research and publishing in peer-reviewed journals.

How does work-life balance typically look for a research scientist?

Work-life balance can vary significantly among research scientists, largely depending on their specific role and current projects. While some may experience regular hours, others might work overtime or on weekends, particularly in high-stakes or time-sensitive projects. However, many research institutions and companies are conscious of the need for balance and provide support for flexible working hours and leave policies.

What is the most rewarding aspect of being a research scientist?

Many research scientists find the discovery process the most rewarding aspect of their work. That is, the ability to develop and test hypotheses, analyze data, and contribute to the scientific community and, in some cases, to society as a whole. Additionally, the intellectual challenge and the opportunity to work on cutting-edge technologies and concepts can be deeply fulfilling.

Reviewed and verified by Pete Newsome

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  • Home: Explore careers

Research scientist

Alternative titles for this job include.

Research scientists plan and lead experiments and investigations on a range of scientific topics.

Average salary (a year)

£27,000 Starter

£48,000 Experienced

Typical hours (a week)

39 to 41 a week

You could work

evenings / weekends / bank holidays on shifts

Jaz is a research scientist at the Natural History Museum.

A person wearing a white lab coat stood in a laboratory setting.

Their research involves studying cells and DNA, and has even included a trip to the Arctic.

How to become

How to become a research scientist.

You can get into this job through:

  • a university course
  • an apprenticeship
  • working towards this role

You usually need a first or 2:1 (upper second class) degree in a science subject to become a research scientist. Most research scientists continue to study for a postgraduate qualification like a PhD.

You could study on an integrated postgraduate master's course. These courses include independent research and are designed to lead directly on to a PhD.

Entry requirements

You'll usually need:

  • 2 or 3 A levels, or equivalent, including a science, for a degree
  • a degree in a relevant subject for postgraduate study

More Information

  • equivalent entry requirements
  • student finance for fees and living costs
  • university courses and entry requirements

Apprenticeship

You could apply to do a Research Scientist Level 7 Apprenticeship, which is equivalent to postgraduate study.

You could also join a degree apprenticeship if you want to work in a particular field of scientific research. 

Apprenticeships include:

  • Biomedical Scientist Level 6
  • Nuclear Scientist Level 6
  • Materials Science Technologist Level 6
  • Clinical Scientist Level 7

These apprenticeships can take around 3 years to complete.

To get onto an apprenticeship, you'll find it useful to have:

  • 4 or 5 GCSEs at grades 9 to 4 (A* to C) and A levels, or equivalent, for a higher or degree apprenticeship
  • guide to apprenticeships

It may be possible to start as a research assistant or graduate industrial scientist. You would usually need to study part time for a PhD while you work.

UK Research and Innovation and industrial companies sometimes offer studentships. This would give you the opportunity to do a PhD while getting practical research experience.

Career tips

It may improve your chances of finding work if you've got work experience in a research department, or your degree included a placement in a research environment.

As a graduate, you could look for postgraduate training opportunities offered through Knowledge Transfer Partnerships (KTP) . In a KTP you would get the opportunity to run a research project together with an organisation and a university or research body.

Further information

You can get advice about research careers from the Science Council and professional bodies for particular scientific fields, such as:

  • Biochemical Society
  • Royal Society of Biology
  • Institute of Physics

What it takes

Skills and knowledge.

You'll need:

  • science skills
  • maths knowledge
  • complex problem-solving skills
  • thinking and reasoning skills
  • to be thorough and pay attention to detail
  • the ability to use your initiative
  • excellent written communication skills
  • the ability to work well with others
  • to be able to use a computer and the main software packages confidently

What you’ll do

What you'll do, day-to-day tasks.

As a research scientist you could:

  • write research proposals and apply for funding
  • plan, design and do experiments
  • record and analyse results
  • present findings in journals and at conferences
  • develop new products and ways to apply new discoveries
  • teach and supervise students' research projects

Possible green job

This job could help the environment.

For a research scientist to be a green job, you could:

  • carry out research which supports the environment like turning waste products into fuel
  • work with reusable or recyclable equipment
  • use materials from local suppliers to reduce emissions from shipping

Find out more about green careers

Working environment

You could work in a laboratory or at a university.

Your working environment may be outdoors some of the time.

You may need to wear protective clothing.

Career path and progression

As a scientist with a research council or organisation, you could move into a senior research or laboratory management position.

In an academic post, once you've gained experience and published original research, you could progress to senior research fellow or professor and lead your own research team.

You could open up further opportunities for career development by gaining Chartered Scientist status .

You can get more details about career development options through Vitae .

Current opportunities

Apprenticeships in england, apprentice ceramic development technologist.

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Courses In England

Access to he - science.

  • Provider: Harrow, Richmond & Uxbridge Colleges (HRUC)
  • Start date: 16 September 2024
  • Location: Twickenham

Access to HE: Science

  • Provider: SUFFOLK NEW COLLEGE
  • Start date: 09 September 2024
  • Location: Ipswich

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Becoming a Research Scientist: Job Description & Salary Information

About this article

Pros and Cons of Being a Research Scientist

Research scientists are involved in the research and development angle of a specific industry. Medicine and pharmaceutical development are the two most common. Take a look at the pros and cons below to see if becoming a research scientist is the best decision for you.

Source: *U.S. Bureau of Labor Statistics

Career Information

Job description and duties.

Research scientists study and investigate specimens and scientific processes involved with the specific goals of the company. Research scientists record, analyze and interpret data, providing evidence to support all conclusions, whether that be in the advancement of technology, creation of new commercial applications, processes or products or to increase scientific understanding. Scientists may also conduct fieldwork, teach, publish papers, give findings in seminars or presentations, read journals and attend academic conferences.

Job Prospects and Salary

Research and development are the backbones of any industry, as well as anything involving product development, the advancement of technology and any data-based improvements. The need for qualified research scientists is always in demand. The average pay ranges widely depending on the field, from $77,920 a year to $113,190 (www.bls.gov), making it a very lucrative field, as well as a highly competitive one. Considering the top-level jobs require a master's or doctorate degree and at least a few years of industry-specific experience, it's a position that requires several years of planning and education. But with the demand for these positions not likely to ever decrease, the appropriate amount of experience and education can put the right employee in a very good position to get the job. The room for advancement is wide open for these same reasons.

What Are the Requirements?

Job requirements for a research scientist largely involve educational backgrounds. Most companies require a master's or doctoral degree (or advancement toward that degree) in the chosen field of research. Requirements are also heavily based in the knowledge and experience of industry-specific equipment and the competent analysis of collected data. Scientists should have organizational, time management, communication, paper writing, presentation, networking and analytical skills.

Job Postings from Real Employers

Employers are generally looking for a research scientist with an advanced degree and a few years of industry experience. Here are some requirements for a research scientist position taken from job postings on CareerBuilder.com and Monster.com:

  • 'Requirements include a Master's degree or appropriate coursework in organic chemistry or Pharmacy certification. Laboratory research experience is a definite plus, and specific case-study experience is very helpful.' -- AMRI
  • 'The ideal candidate will have two years of experience in data analysis in a laboratory and research setting. Must be computer literate at a high level and willing to learn new systems. There will be interaction with customers, so a background in customer service is helpful. Applicants should be willing to learn about clinical research. Must have excellent team and communication skills.' -- MedFocus
  • 'The research scientist will support the development and implementation of disease-relevant pharmacology models for testing of therapeutics for degenerative diseases such as multiple sclerosis. You will be experienced in conducting research and tests to determine correlations between multiple variables. Experience in test staining and microscopy would be a plus.' -- Vertex Pharmaceuticals

How to Maximize Your Skills

There are a variety of ways to help your resume stand out. You can earn a doctoral degree to ensure you've acquired the highest level of education available. If you intend to conduct medical research, you may consider obtaining an advanced degree in medicine, so you can perform medical procedures as part of your research. If you know you'd like to specialize in a particular kind of research, you can take additional coursework in those areas to strengthen your knowledge.

Alternative Career Paths

Microbiologist.

If you enjoy studying nature and how biological systems work, you may consider becoming a microbiologist. Microbiologists study microorganisms to determine how they live, function and interact with other organisms and their environment. Microbiologists work to improve scientific knowledge and solve scientific problems. Becoming a microbiologist only requires a bachelor's degree, rather than a master's or more typically, a doctoral degree. The majority of microbiologists work in research and development, and the Bureau of Labor Statistics (BLS) reported in 2014 that the average salary for microbiologists was $76,530.

Computer Hardware Engineer

If you're more interested in computer science research, you may want to look into becoming a computer hardware engineer. Computer hardware engineers conduct research and develop new technology including networks, processors, memory systems and routers. They test the systems to ensure their functionality. To become a computer hardware engineer, you only need to obtain a bachelor's degree in engineering or electrical engineering. It is also recommended to have an understanding of computer programming. According to the BLS, in 2014 the average salary for computer hardware engineers was $110,650.

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How to become an AI research scientist

Is becoming an ai research scientist right for me.

The first step to choosing a career is to make sure you are actually willing to commit to pursuing the career. You don’t want to waste your time doing something you don’t want to do. If you’re new here, you should read about:

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Still unsure if becoming an AI research scientist is the right career path? Take the free CareerExplorer career test to find out if this career is right for you. Perhaps you are well-suited to become an AI research scientist or another similar career!

Described by our users as being “shockingly accurate”, you might discover careers you haven’t thought of before.

How to become an AI Research Scientist

Becoming an AI research scientist requires a combination of education, technical skills, research experience, and professional development. Here's a guide on how to pursue a career as an AI research scientist:

  • Education: Start by obtaining a bachelor's degree in a relevant field such as computer science , mathematics , statistics , or engineering . A strong foundation in mathematics, including calculus, linear algebra, probability, and statistics, is essential for understanding the theoretical concepts underlying AI algorithms and models.
  • Advanced Degree: Consider pursuing a graduate degree such as a Master's or Ph.D. in Computer Science , Artificial Intelligence , Machine Learning, or a related field. A graduate degree provides in-depth knowledge and research experience in AI and allows you to specialize in areas of interest within the field.
  • Gain Technical Skills: Develop strong technical skills in areas such as machine learning, deep learning, natural language processing, computer vision, and reinforcement learning. Familiarize yourself with programming languages such as Python, R, and Java, as well as libraries and frameworks such as TensorFlow, PyTorch, and scikit-learn.
  • Research Experience: Gain hands-on research experience through internships, research assistantships, or collaborative projects with faculty members or industry partners. Conduct independent research, publish papers in academic journals and conferences, and participate in research competitions to showcase your skills and expertise in AI.
  • Stay Updated: Stay abreast of the latest developments, trends, and breakthroughs in AI research by reading academic papers, attending conferences, workshops, and seminars, and participating in online communities and forums. Follow leading researchers and organizations in the field to stay informed about emerging technologies and research opportunities.
  • Build a Portfolio: Develop a portfolio of AI projects, research papers, and publications that demonstrate your expertise and contributions to the field. Showcase your research findings, algorithms, models, and implementations in a portfolio or online profile to highlight your skills and accomplishments.
  • Networking: Network with professionals in the AI research community through academic institutions, research labs, industry events, conferences, and online forums. Build relationships with researchers, faculty members, and industry professionals who can provide mentorship, guidance, and collaboration opportunities in AI research.
  • Apply for Positions: Once you have the necessary education, skills, research experience, and portfolio, start applying for positions as an AI research scientist. Look for opportunities in academic institutions, research labs, government agencies, and industry companies that conduct AI research and development. Tailor your resume and cover letter to highlight your relevant experience, skills, and contributions to AI research.

Further Training For AI research scientists looking to further their education and advance their careers, there are several options to consider:

  • Postdoctoral Research: After completing a Ph.D., AI research scientists may choose to pursue postdoctoral research positions to further refine their expertise and gain additional experience in specific areas of AI research. Postdoctoral positions offer opportunities to work on cutting-edge research projects, publish papers, and establish a strong academic or industry research track record.
  • Specialized Training Programs: Many universities and research institutions offer specialized training programs, workshops, and summer schools focused on AI and machine learning topics. These programs provide opportunities to learn from experts in the field, gain hands-on experience with state-of-the-art techniques and tools, and network with peers and mentors.
  • Online Courses and Certifications: There are numerous online courses, tutorials, and certifications available that cover various aspects of AI and machine learning. Platforms such as Coursera, edX, Udacity, and Stanford Online offer courses taught by leading experts from top universities and industry organizations. Completing online courses and earning certifications can help AI research scientists stay updated on the latest developments and acquire new skills in specific areas of interest.
  • Industry Training Programs: Many technology companies and research labs offer training programs and internships for AI research scientists to gain practical experience and hands-on training in industry settings. These programs provide opportunities to work on real-world projects, collaborate with industry professionals, and learn about the latest tools and techniques used in industry research and development.

in the light of the science!

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How To Become A Research Scientist In Biotechnology

Table of Contents:

How to Become a Research Scientist . Kickstart your career as a research scientist with these five tips.

These real-world case studies are a core component of Northeastern’s approach to learning, and they help prepare students to think critically about their work. By bringing this exposure into the classroom, students also graduate better prepared to tackle current industry challenges and adapt to evolving trends.

  • Download Our Free Guide to Advancing Your Biotechnology Career
  • Acquire the necessary technical skills.
  • Become a critical thinker.
  • Hone your “power skills.”
  • Obtain hands-on experience.
  • Grow your network.
  • Subscribe below to receive future content from the Graduate Programs Blog.

Video advice: Research Scientist

Research Scientist | Career Counselling for Students. Abhishek sir explains to you guys about the scientific research career opportunities. Doubts like -Is research scientist a good career? What does a research scientist do? How much do research scientists get paid? will be cleared through this session. This video includes all the necessary information about the salary package, courses and job opportunities that one can have as a Research Scientist. Listen carefully and ask doubts in the comment session. Please do support by Like, Share and Subscribe.

How To Become A Research Scientist In Biotechnology

Northeastern’s master’s in biotechnology program is designed to help students grow in this regard. “Everything we do within the program is geared (toward) making you a critical thinker and a problem solver,” Auclair says. “We try to define classes and assessments to make you think, (and) we also hire most of the faculty in our program directly from the industry, so they bring with them real-world experience that they can talk about with the students.

How to Become a Biotechnology Research Scientist

Biotechnology involves the manipulation of a living organism to produce a useful product or perform a specific process. Biotechnology research scientists, or biotechnologists for short, work in a variety of industries, including environmental biotech, agricultural …

Biotechnology Scientist Job Profile – Biotech research is advancing at a fast pace, fueled by the demand for innovation. The development of biodegradable plastics, biofuels and other breakthrough products would not have been possible without the hard work of those working in this industry. You, too, can become a biotechnology scientist and leave your mark on the world. It won’t be easy to break into this field, but you may get the chance to work alongside some of the brightest minds. Tip The first step to becoming a biotechnology scientist is to choose an area of practice, such as molecular science or biochemistry. Next, look for graduate programs that can help you develop technical competencies and gain practical experience. Biotechnology Is Changing the World Have you tried to brew beer or make bread? Both processes use yeast, a living organism, to produce food products. Biotechnology is based on the same concept, but it’s implemented at a larger scale and involves more complex processes. Think about genetically modified crops, bioplastics, gene therapy or molecular tests.

How to Become a Biotechnology Researcher – Are you interested in studying microorganisms and their life processes? Are you interested in utilizing knowledge of biology to help create useful products, such as those found in medicine?

To work in a research or research capacity, you will require at least a master’s degree in one of the above-mentioned fields. Working as a principal biotechnology researcher (a role that also involves the supervision of research associates and other staff), you will likely be required to have a doctorate degree in a related field and a minimum of 10 years of experience.

Biotechnology (BS)

department of Biology BS in Biotechnology (0499)

  • Biotechnology BS
  • Major Discipline Requirements
  • I. Required Foundation Courses
  • II. Biotechnology Requirements
  • III. Biotechnology Options

Arts and SciencesBiologyHEGIS Number: 0499InfoThe Online Bulletin is for information purposes only. Current students must complete the requirements as outlined in the York Bulletin as applicable. Course DescriptionsCourse descriptions can be found in the online PDF version of the BulletinBiotechnology at York College is an interdisciplinary program designed to provide students with strong academic training in sciences and math with an emphasis on applied research and variety of laboratory experiences. This program promotes the development of critical and creative thinking and fosters collaboration and ethical values. Students receive strong foundations in biotechnology, genetics, cell and molecular biology and biochemistry while acquiring essential laboratory skills and learning research design and methods. They are also offered a chance to participate in independent research projects in research laboratories, familiarize with research technology and collaborative work and become leaders who will have a great impact in the global scientific community.

How to Start a Career in Biotechnology? A Brief Overview

If you are someone who has some keen interest in biology and wishing to opt for a career in Biotechnology, you need to go through this article today.

Many Private companies are there in the field of biotechnology. For example, if we consider Drug companies there are numerous names like Hindustan Lever, Dabur, Ranbaxy and several others who have their own Research and Development department. For this they require Professional Biotechnologist, offering a handsome salary.

  • A Brief Idea About How to Start Career in Biotechnology
  • How to Start your career in Biotechnology: When to Start?
  • Project Management in Biotechnology
  • Job Prospects In Biotechnology

Biotechnology is the wide area of Biology which involves living systems and organisms in order to develop a product. In other words, one can say it is a way that enables us to amalgamate biological science with engineering technologies in order to invent new products in the field of agriculture, food, medicine, pharmaceuticals, environment, and healthcare. It might sound too complicated, but it isn’t so, humankind has been using biotechnology from ages.

Biotechnology Research Scientist

New Major Coming Soon, Minor Available Now! Dynamic, research-intensive program with lab opportunities beginning your first year.Gain experience using.

  • Click to view course requirements for the Biotechnology (B.A.).
  • Major Requirements (52 credits)
  • Electives (20 credits; minimum of 4 courses with labs)
  • Click to view course requirements for the Biotechnology minor.
  • Minor Requirements (18 credits)

New Major Coming Soon, Minor Available Now! Biotechnology MinorCovering the core concepts of biology, chemistry, health sciences, and other scientific disciplines, the biotechnology minor at Elms College focuses on the practical applications of research aimed at benefiting society and improving human, animal, or environmental health. Biotechnology minors gain valuable knowledge in the following:Emerging technologies. Writing cohesive scientific research papers outlining your hypothesis, methods, and results that can communicate to a number of different audiences. Cell/tissue cultures. Cell-based assays. Flow cytometry. Protein purification, quantification, analysis, assay, and handling. DNA extraction, quantification, analysis, and handling. PCR (polymerase chain reaction) and qPCR (quantitative polymerase chain reaction). Data computation and analysis skills. Become a Research ExpertThe biotechnology major at Elms College is designed for students passionate about research. While you will cover core concepts of biology, chemistry, health sciences, and other scientific disciplines in your core classes, most of your academic experience will take place in research labs on campus.

Video advice: How to Become a Medical Research Scientist (WOW)

How to Become a Medical Research Scientist

How To Become A Research Scientist In Biotechnology

Research scientist (life sciences) job profile

Discover what it takes to be a Research scientist (life sciences). Find out expected salary, working hours, qualifications and more.

Types of work – If you have an inquisitive mind and enjoy planning and working on experiments, you could be suited to a career as a research scientistAs a researcher in life sciences, you’ll mostly be involved in planning and conducting experiments and analysing results. This could either be for a definite end use, such as to develop new products, processes or commercial applications, or to broaden scientific understanding in general. You’ll usually carry out your experiments and research on your own, but you’ll typically be part of a larger team and will share your findings and relevant information with colleagues. This is sometimes done at international conferences or through the publication of research papers. You can find employment in commercial or government laboratories, hospitals and higher education institutions. Types of workYou could specialise in a particular area of life science, such as:bioinformaticsbiotechnologygenomicsmicrobiologyneurosciencesoncologypharmacologyphysiologyplant sciencesstem cell research.

What does a Biotechnology Research Scientist do? Most biotechnology research scientists work in a laboratory conducting experiments in the field of biotechnology. The job duties of a biotechnology research scientist include research on areas that affect vital processes such as growth and aging; …

  • What does a Biotechnology Research Scientist do?
  • How to become a Biotechnology Research Scientist?
  • Average Salary**

Most biotechnology research scientists work in a laboratory conducting experiments in the field of biotechnology. The job duties of a biotechnology research scientist include research on areas that affect vital processes such as growth and aging; research or study chemical composition and processes of living organisms; determine chemical actions and effects on organisms such as the action of foods, drugs, or other substances on body functions and tissues.

How To Become A Biotechnologist – Do you want to know that how to become a biotechnologist? then read this blog. very effective tips are given.

Bio-Technology is a booming research field which is an interdisciplinary discipline that includes Biology and its application. It covers up a wide variety of subjects like Genetics, Biochemistry, Microbiology, Immunology, Virology, Chemistry and Engineering and more. If you are keen to do a career in biotechnology, here we share an overview on how to become a biotechnologist.

How to become a Biotechnologist

  • Personal requirements for a Biotechnologist
  • Education & Training for a Biotechnologist
  • Duties & Tasks of a Biotechnologist
  • Employment Opportunities for a Biotechnologist
  • Specializations

Biotechnologists study plants, animals and microorganisms. They use this knowledge to develop uses for biological processes, which include creating products for pharmaceutical, agricultural, diagnostic and environmental use, and advancing industrial processes. Their work may incorporate the use of small molecule technologies, nanotechnology, bioinformatics and synthetic biology. Personal requirements for a Biotechnologist Enthusiasm and aptitude for science and research Able to think logically and analytically Able to carry out detailed and accurate work Good communication skills Able to solve problems and think creatively Able to work independently or as part of a team Able to grasp the ethics of scientific research involving humansEducation & Training for a BiotechnologistTo become a biotechnologist you usually have to complete a degree in biotechnology or a degree in science with a major in one of the life sciences. You can also become a biotechnologist by completing a degree in chemical engineering with a major in any type of biological engineering.

B.S. in Biotechnology

The growing field of biotechnology – improving lives through scienceThe biotechnology field is far-reaching and ripe with opportunity. Built on a solid foundation of biology and chemistry, this innovative bachelor’s degree program combines the study of applied molecular and cellular biology.

Our goal is to prepare students for employment opportunities in the critically important and dynamic biotechnology industry. Biotech students participate in a required internship at a local company such as Alexion, Isoplexis, Quantum BioPower, The Jackson Laboratory, Synovel Laboratory, Archillion, and more.

Hands-On Research Projects

Upon graduation, students are equipped to pursue a career as a research associate in biotechnology or biopharma or to launch a career in life sciences. They may also enroll in graduate programs (M. S. or Ph. D. ) in biotechnology or related fields such as molecular biology, microbiology, genetics, and biochemistry. Some biotechnology B.S. graduates pursue advanced professional degrees such as an M.D. (medicine), M. B. A. (business), or J.D. (law), with an emphasis on biotechnology issues.

ImCare Biotech’s main R&D center has a modern fully-equipped laboratory focused on molecular biology and tissue cultures. It’s located in Doylestown(PA) USA.

The position will be at the Pennsylvania Biotechnology Center, a biotechnology incubator located in Doylestown, PA. The Research Scientist will be a more senior member of our science team and have the opportunity to work on developing cutting edge research. He/she will also have the opportunity to be included in top publications made by the company.

The Research Scientist will perform applied and fundamental research in the area of liver cancer diagnostics and therapy, working directly with the Chief Science Officer. His/her primary responsibility will be to carry out investigative experiments, maintain, develop, and produce key scientific and research materials, and analyze and present relevant data. Furthermore, the Research Scientist is expected to manage the day-to-day operation of the laboratory.

Video advice: How to become a research scientist

A detailed discussion with Ms. Kirthana Sindhe (A cancer research scientist)

How To Become A Research Scientist In Biotechnology

What education is needed for biotechnology researcher?

To teach or conduct biotechnology research, you typically need to earn a doctoral degree . You may also need a doctorate to qualify for senior leadership or scientific roles. The time required to earn a doctorate can vary considerably.

What are the qualifications for a research scientist?

Qualification to Become a Scientist

  • Candidates must have a bachelor's degree from a reputed college or an institution.
  • Graduation must necessarily be in the field of science.
  • Candidates are required to score a minimum of 60% in their graduation.
  • In case of masters degree candidates must score a minimum of 65%.

How can I become a research scientist in biotechnology in India?

Get into a good Masters program . Appear for competitive exams like IIT JEE, JNU and TIFR if you wish to pursue your MSc in India. You can apply for either MSc or MSc integrated PhD course. Aim for NCBS, IISc, IISERs, IITs for a Phd if you do it in India.

Which field is best in biotechnology?

Best Biotechnology Careers

  • Medical Scientist.
  • Biotechnological Technician.
  • Epidemiologist.
  • Microbiologist.
  • Medical and Clinical Lab Technologist.
  • Biomanufacturing Specialist.
  • Bioproduction Specialist.
  • R&D Scientist.

Do you need a PhD to be a research scientist?

Becoming a research scientist requires a bachelor's, master's, or doctoral degree in their field of study depending on the role they want to fulfill and experience it needs. ... There is more than meets the eye when it comes to being a Research Scientist.

Related Articles:

  • What Is A Biotechnology Research Scientist
  • What Does A Biotechnology Research Scientist Do
  • How Much Experience Until You Become Research Scientist In Biotechnology
  • How To Become Scientist After Bsc Biotechnology
  • How To Become Scientist After Msc Biotechnology
  • What Does A Biotechnology Scientist Do

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become a research scientist

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Who is a Research Scientist?

Everything that you see around you has been invented or discovered by the work of some extraordinary individuals who are known as research scientists. These individuals are responsible for carrying out scientific activities and are involved in the study of the world around them. They are also dedicated to improving the quality of life on the planet by developing new scientific methods and techniques.

If you are a science enthusiast who has a passion for the subject and is interested in learning more about the world around you, then you should consider becoming a research scientist. In addition to being involved in scientific activities, research scientists also have the opportunity to earn a living. In this article, we will be discussing how to become research scientist after 12th or how to become a research scientist in India. 

Research Scientist

Research Scientist in a Nutshell

The passion for finding answers and the excitement of working on projects are some of the factors that make a fascinating research scientist career. However, working on a project can also expose them to various challenges and failures. A research scientist's job involves a wide variety of subjects and tasks.

Quick Facts for Research Scientist

Male, Female

Research scientist jobs are suitable for individuals who are interested in becoming a part of the technology and science industry. Both men and women can pursue this research scientist career. The right attitude and skills are some of the factors that a person should consider when it comes to choosing a research scientist career in this field.

Individuals with strong analytical and critical thinking skills can become a research scientist. There are no restrictions to this type of job, and it can be done remotely. In addition, there are various fields of science that can be done without any external efforts or physical movement. This is a perfect job for people with special needs.

Table of Contents for Research Scientist

What is the role of research scientist.

A research scientist is a person who is responsible for managing various tasks and projects, such as teams, documents, and projects. Some of them are from scratch, while others require some form of intermediary involvement. As a research scientist, you will be categorised into two categories: experimental and theoretical.

An experimental research scientist is a scientist who carries out the experiments and test results of a project. On the other hand, a theoretical research scientist is a scientist who works on the concepts and equations of a project.

The duties of a research scientist include overseeing the availability of the necessary services and equipment within the company at all times. He or she is also responsible for ensuring that the organization's policies and procedures are followed. The ideal candidate for this job would have the necessary skills and knowledge to maximize the efficiency of the company's resources.

Supervision

The duties of a research scientist include ensuring that the needs of the studies and trials are met at the centre of the care delivery process. He or she is also responsible for ensuring that the environment is safe and that the equipment used for the studies is working properly.

Team management

As a research scientist, he or she is responsible for ensuring that the various tasks and projects are carried out in a way that is consistent with the goals and objectives of the project. He or she is also expected to ensure that the team members come up with the best possible approach to the project.

Leadership Skills

Research scientists are expected to provide effective leadership and promote sound scientific practices. They are also responsible for developing support mechanisms that encourage and guide innovation in the field.

Maintenance work

As a research scientist, you will be responsible for disseminating knowledge and skills to other disciplines within the company. You will also be expected to deal with government officials and other organizations in stressful situations.

Research work

In certain situations, a research scientist's job involves carrying out a local audit and conducting research to ensure that the findings are properly disseminated. This type of work is usually carried out in order to obtain approval from the ethical council.

Types of a Research Scientist

There are various types of research scientists working in different scientific fields. These associates are responsible for analysing and disseminating scientific information.

Astronomer :  Astronomers are responsible for studying stars, galaxies, and planets. They also track the non-celestial objects in outer space. This field involves working closely with other scientists to study planetary movements.

Botanist :  As a botanist, one of the main roles of this field is to study the various aspects of the plants that are commonly found in the environment. They analyse the plant's structure, development, and uses.

Geologist :  As a Geologist, one of the most important roles in this field is to study the various elements of the Earth, including its solid, liquid, and gaseous state. He or she also studies the history and evolution of the planet.

Marine Biologist:  As a marine biologist, one of the main areas of specialisation is the study of the various marine organisms that live in the environment. This field involves analysing the interactions between plants and animals. After gaining a broad understanding of oceanography and biological oceanography, marine biologists conduct close research on different aquatic species.

What is the workplace/work environment of Research Scientist like?

As a research scientist, you will be part of a team working in different areas of the research, such as medical centres and laboratories. You will be expected to keep up with the latest developments in the field and the theoretical and experimental history of the project.

Does Research Scientist require travelling?

One of the main advantages of being a research scientist is that you will be working in a single research area, and you will typically spend about 90 per cent of your time in the OR suite. In other cases, you will be expected to work in different areas of the research, such as laboratories and experimental fields.

Employment Shifts

Full time, part time.

Research scientists are typically expected to work up to 60 hours per week, and they may also be required to be present on call during certain hours of the day. In certain facilities, where there are numerous trials, research scientists may be required to work in shifts to ensure that there are trained staff members available 24 hours a day.

Employment Nature

The nature of a research scientist's work is that it is a permanent position, which means that employers can hire them on a permanent basis. Medical centres and other third-party companies often hire research scientists.

As a research scientist, you will be expected to work in different areas of research, such as medical centres and laboratories. You will be expected to keep up with the latest developments in the field and the theoretical and experimental history of the project.

Presence in Geographical Area

Semi-urban, urban.

Tier-1 cities such as New Delhi, Bengaluru, Hyderabad, and Kolkata are known for their healthcare facilities and are known to be great places for research workers. In Tamil Nadu, the average research scientist salary is 10.6 per cent higher than the national average. In Bangalore and Karnataka, the research scientists earn more than the national average, while in Mumbai, the lowest pay is around 11.5 per cent.

Time Pressure

As a research scientist, you will be expected to work from 9 am to 5 pm, and you may be required to perform various shifts depending on the schedule.

Overtime Details

Research scientists are expected to work overtime, and this is typically done under certain circumstances. Apart from working long hours, they are also expected to perform other tasks that involve weekends and long days.

Weekly Hours of Work

Min 45 hours.

In certain facilities, where there are numerous trials, research scientists may be required to work in shifts to ensure that there are trained staff members available 24 hours a day.

How to become a Research Scientist?

Steps to become a research scientist.

If you are someone who enjoys doing research or want to know things in-depth then a career as a Research Scientist is the most suitable career for you. If you are looking for the details of how to become a research scientist in India or how to become a research scientist after 12th then you have come to the right place. We have mentioned below the steps for how to become a Research Scientist in India. 

Identify Skills

Enrol in formal training/course, pursue a specialised certification, build an attractive resume, gain experience, find a suitable job, begin a career.

To become a Research Scientist you are required to know what skills are required for a career as a Research Scientist. We have mentioned below some of the soft skills and hard skills.

Some of the soft skills for how to become a Research Scientist in India are attention to detail, communication skills, analytical skills, time management, collaboration and creativity. 

Creativity 

Curiosity 

Communication

Productivity

Formulaic Thinking 

Apart from that, you must also have some of the hard skills that are required to become a Research Scientist in India are cell culture, biochemistry, and data analysis. 

Data Analysis

Data Collection

Research Projects

Molecular Biology

Python and Java 

Cell Culture 

Experimental Design

If you are still looking for how to become a Research Scientist in India, then the most essential step for you to take is that you must opt for a formal training programme to gain knowledge in the subject and to opt for a career as a Research Scientist. You are required to complete 10+2 in Biology , Chemistry , Physics , and Mathematics from a recognised board in India. 

After you have completed your 10+2, you must opt for a bachelor’s degree by appearing for the entrance examination and then opt for a master’s degree in MSc Clinical Research or any other related degree. Below, We have mentioned the Research Scientist entrance examination, bachelor’s and master’s degrees.

Entrance Examinations

Bachelor’s Degree Programmes

Master’s Degree Programmes

If you are looking for how to become a Research Scientist in India, then you can also opt for a specialised certification. If you pursue a certification course you will gain more knowledge and skills. Below we have given some of the specialised certifications. 

Once you have completed your formal degree and certifications, you are required to create an attractive resume with all of your details such as subject knowledge and skills, your interest in the research field, and your educational background. Your resume must be in a formal and professional tone.

If you want to develop your skills and knowledge practically and gain industry experience then you must pursue an internship. Before you pursue your Ph.D. program it is better that you work for one to two years. You can upload your resume to various internship platforms, or connect directly to popular laboratories and research centers where you can work under the supervision of experienced professionals.

Once you have completed your training or internship, you can now apply for full-time job opportunities. You can apply on various job offering platforms such as Naukri, Linkedin, Monster and Indeed. Apart from that you can also approach directly to some of the laboratories or research institutes or universities. 

This is the final step in how to become a Research Scientist in India. After attending some of the related interviews you can select the best and the right offer and accept it and join the company and begin your career. 

What are the skills and qualities required to become a/an Research Scientist?

  • Communication skills
  • Critical thinking
  • Learning Skills
  • Attention to detail
  • Physical strength
  • Science skills

Patience:  As a research scientist, one has to remain calm and make the right decisions in order to carry out their duties. This is very important in order to maintain the continued success of the research project. The work that the associate does helps in developing new methodologies for human life.

Physical Strength: Having the proper physical strength and mental focus is very important for a research scientist to be successful in their job. Besides being physically fit, research scientist also needs to stay focused and alert during their trials, which can last for up to 8 hours.

Communication Skills:  One of the most critical skills that research scientists need to develop is communication skills. This is because, in a high-stakes environment, communicating effectively is very important.

Science Skills: People should have a deep understanding of science in order to excel in their field. This is very important for them to become a research scientist. Besides being able to excel in the field, it is also very important that they have a passion for technology.

Attention to Detail: One of the most important factors that a research scientist should consider when it comes to becoming a research scientist is the importance of paying attention to detail. This is because, in order to produce the best possible work, one must always be able to make the necessary decisions.

Critical Thinking:  As a research scientist, you must have the necessary skills to analyse and interpret data in order to make informed decisions. This discipline involves identifying the weaknesses and strengths of various solutions. Besides being able to analyse and interpret data, a research scientist also needs to have the necessary analytical skills to deal with difficult situations.

Learning Skills: In addition to being able to analyse and interpret data, a research scientist also needs to have the necessary analytical skills to deal with difficult situations. Learning skills are very important in a career as a research scientist. This discipline involves conducting various tasks such as inspecting and testing equipment.

Which certifications and internships can be helpful in becoming Research Scientist?

Individuals aspiring to become research scientist can upgrade their skills by taking various certification courses. These courses can help them perform at their best.

Internship Availability

Several organisations in the science and technology industry provide internships to students. These are designed to provide them with an opportunity to enhance their technical skills and experience, as well as learn more about becoming a research scientist. To apply, students must go through the website portals of their choice. They are also required to provide their CV and meet the requirements of the internship. Shortlisted candidates will be given various opportunities throughout the year.

Career Path Progression for Research Scientist

Junior Research Scientist:  Junior research scientists are responsible for providing technical guidance to the technicians and interns working in other fields who are under their expertise. These individuals use their knowledge in the areas they work in to improve their efficiency.

Senior Research Scientist:  A senior research scientist is a person who focuses on the principles of various engineering disciplines such as electrical, chemical, and physics. They supervise the technicians and technologists who are involved in the production or research of the project. They also prepare reports and perform other tasks to communicate engineering recommendations.

Research Scientist Jobs and Salaries

Junior research scientist.

  • Average Salary 39000

Job Description

The Junior Research Scientist job description includes planning and conducting experiments, and formulating and executing investigative protocols. A Junior Research Scientist does data collection and analysis. 

Salary Description

An entry-level Junior Research Scientist salary in India ranges between Rs 2.0 Lakhs to Rs 9.8 Lakhs with an average annual salary of Rs 5.0 Lakhs per annum. Junior Research Scientist in India may vary depending on the various job factors like the skills and experience of the candidates, job location, and others.

Salary Source: AmbitionBox

Senior Research Scientist

  • Average Salary 70000

The Senior Research Scientist job description includes securing the funding, publishing the findings and conducting in-house research presentations. A Senior Research Scientist promotes beneficence, minimises risks, and collects and analyses data.

The estimated Senior Research Scientist salary in India ranges from Rs 5.6 Lakhs to Rs 20.0 Lakhs with an average annual salary of Rs 10.0 Lakhs per annum. Senior Research Scientist salary may vary depending on the various job factors.

What is the job outlook for Research Scientist?

There are numerous growth opportunities in a research scientist career. You can choose to specialise in one of the areas of corporate social responsibility or develop new skills in areas such as research and development.

One of the oldest research scientist career in the industry, research scientist has plenty of scope and potential. In addition to being in the medical and biological sectors, research scientist jobs are also available in engineering technology fields. This field is heavily influenced by the discoveries made in the field of engineering, which involves the study of particulate matter.

Frequently Asked Questions for Research Scientist

Que. how to become a research scientist in biotechnology.

You must pursue a bachelor's degree by giving an entrance exam like ARS NET, JRF,  ICMR, and DBT NET and opt for a master's degree in MSc Biotechnology and must opt for an internship for atleast one to two years.  

Que. How to become a research scientist in physics?

You must pursue a bachelor's degree by giving an entrance exam like JEST, or UGC-NET and opt for a master's degree in biochemistry, biology, or pharmacology and must opt for an internship for atleast one to two years.  

Que. How to become a research scientist in biology?

You must pursue a bachelor's degree in biology by giving an entrance exam and opt for a master's degree in biochemistry, biology, or pharmacology and must opt for an internship for atleast one to two years. After that, you can opt for a PhD.

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Questions related to Research Scientist

Which is the best msc in microbiology or msc in bio physicsin terms of jobs as a research scientist after completing my bsc degree in microbiology ....

Hello Aspirant,

There are numerous opportunities ahead for graduates of M.Sc Microbiology. The scope has risen for M.Sc. microbiology graduates with the emergence of COVID. The demand for researchers has constantly increased to determine whether its existence in the human ecosystem is natural or man-made.

An M.Sc. in microbiology provides numerous opportunities in various fields such as education, healthcare, pharmaceutical, and agriculture.

Graduates can find career opportunities in both the private as well as public sectors. The agriculture sector also demands skilled professionals for microbiological research on subjects like rhizosphere, nitrogen fixation, biogas production, soil enzymes, and anaerobic decomposition.

Further, you can know more about the top colleges, salary packages, etc at https://www.careers360.com/courses/msc-in-microbiology#:~:text=Benefits%20of%20Studying%20M.Sc%20Microbiology%20A%20M.Sc.%20in,both%20the%20private%20as%20well%20as%20public%20s

MSc Biophysics: Biophysics is an advanced field of science that uses the techniques of physical science to study biological systems.

Benefits of studying biophysics:

1. Biophysicists can also work in universities, industry, medical centers, research institutes, and government.

2. Candidates can find jobs as biophysics researchers or scientists with research institutes or government organizations in various academic grades for research-oriented programs.

3. The course is beneficial for those who are curious about biological processes and enjoy puzzle solving, designing experiments, or working with numbers and computers, there are many exciting opportunities for you in biophysics.

4. They can even find a job as a professor or member of faculty in a university, medical or dental college offering a program in biophysics.

Further, You can know about this course at https://www.careers360.com/courses/bio-physics-course

In the end, what matters the most is in which area your interest lies and the amount of hard work you put into it.

Best Wishes!

I wanted to ask that do research scientist ( I mean kvpy scholar) earn good amount of money in India ?

Dear aspirant,

Department of Science and Technology, Government of India has started Kishore Vaigyanik Protsahan Yojana or Young Scientist Incentive Plan for encouraging young scientists in pursuing research career courses in basis sciences upto Pre-Ph.D level.

The KVPY students receive a amout of Rs. 5000 monthly fellowship from first year of degree to final year of degree in courses like Integrated M.S or M.Sc, B.Sc or B. Statistics or B. Mathematics or B.S Maths/ Integrated M.S./M.Sc. They receive amount of Rs. 20,000 per year as annual contingency grant. After 3 years the amount is increased to Rs. 7000 and annual grant of Rs. 28,000 is given.

Candidates can also get DST Inspire Scholarship with worth of Rs. 80,000 per annum. The scholarship is given on the basis of Skill test conducted every year.

I hope this information was useful to you.

Best of Luck!!

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Pennington Biomedical Research Center Logo

Good Health is Good Business

Pennington biomedical supports the u.s. military every day.

April 18, 2024 · Baton Rouge, LA

Since 1988, the Pennington Biomedical Research Center has supported the U.S. Military and has become the No. 1 provider of nutrition science for the Department of Defense, or DOD. Over the years, that relationship has grown to include research focused on all aspects of readiness, performance and resilience.

For more than 35 years, Pennington Biomedical and the U.S. Department of Defense have operated in a unique relationship that has resulted in support of over 150 projects and more than 130 jointly authored scientific publications.

These projects have resulted in:

  • Better understanding of soldiers' energy and nutrition requirements
  • Improvements in operational ration nutrition standards
  • Modification of garrison feeding to improve health during basic training
  • Development and dissemination of unique technology to improve the health of Soldiers and their families
  • Better understanding of the role of nutrition, physical activity, and sleep habits on soldier performance and resilience.

The strong history of collaboration coupled with the world-class research capabilities and facilities at Pennington Biomedical supports the Center for Military Performance & Resilience, or CMPR , which identifies novel strategies for the optimization of readiness, performance, health and resilience.  

“ Soldiers frequently engage in operations during which they are subjected to multiple stressors, and even a slight decrease in muscle or brain function can be life-threatening,” said Dr. Jennifer Rood, Associate Executive Director for Cores and Resources and co-director of the Center for Military Performance & Resilience. “Th e strong history of collaboration coupled with the world-class research capabilities and facilities at Pennington Biomedical supports a program that identifies novel strategies for the optimization of readiness, performance, health, and resilience.”

Center for Military Performance

Pennington Biomedical ’s long military history has led researchers to study troops in California, Colorado, Massachusetts and South Carolina as well as Norway, Israel and Kenya to evaluate heat stress, dehydration, mountain sickness, and nutrient imbalances in battlefield conditions.

This research helped develop the First Strike Bar, an energy bar that is now widely used in military combat operations. Successful programs like the Optimizing Performance for Soldiers, or OPS, research studies aim to improve health, performance and recovery on the battlefield, while the Army H.E.A.L.T.H.  program put Pennington Biomedical at the forefront of behavioral technology for the Army.

The OPS research studies aimed to improve the health, performance, and recovery for U.S. Soldiers on the battlefield. Because soldiers are often unable to consume an adequate number of calories to maintain body weight during intense field work and military missions, many experience a drop in testosterone levels. This drop in testosterone can lead to a loss of muscle and problems with memory, mood and concentration, which can put soldiers' safety at risk. Through the OPS studies, researchers examined whether injections that maintained testosterone at normal levels helped prevent these negative side effects during times of calorie deficit.

The  Army H.E.A.L.T.H.  program empowers soldiers in healthy and safe lifestyle change to sustain healthy weight and performance on a year-round basis. This program was developed in order to promote soldier readiness, prevent unhealthy dieting practices, enhance compliance with standards specified by AR 600-9, and to improve eating, exercise, and sleep habits of the soldier and family members. Using cutting-edge technology, these website and smartphone apps incorporate comprehensive and individualized tools for nutrition, fitness, sleep, and resilience. The goal is to help soldiers stay fit at home and prepare for combat during deployment. 

To date, the Army H.E.A.L.T.H. program has been used by over 15,000 men and women on active duty in the Army, its reserves and the National Guard. The programs are currently available to soldiers and families throughout the Army.

“At Pennington Biomedical, we are looking at the health of the whole soldier,” says Tiffany Stewart, Dudley & Beverly Coates Endowed Professor and co-director of the Center for Military Performance & Resilience.  “We want our men and women in uniform to be ready for whatever they may face during their service, and when they return home – and that means being physically, emotionally and mentally healthy.”

Pennington Biomedical researchers are taking everything they’ve learned from working with soldiers and many of the best parts of Army H.E.A.L.T.H. and retooling them into a new app called Z!G. This app will be for the general population, who are struggling with many of the same challenges as active-duty soldiers. This includes first responders and frontline medical professionals, but also anyone who lives with high amounts of stress and uncertainty, which might be most of us.

Through collaboration with the Louisiana National Guard, or LANG, a customized version of the app has already been tested by a majority of the state’s soldiers and their family members, in all 64 Louisiana parishes.

Pennington Biomedical received a federal award of $3.6M in 2022 to establish the new Center for Military Performance and Resilience. Current center projects that are being pursued to further improve health of the American solider and Louisiana guardsmen and cadets include:

  • Stand Ready, which will establish connections between diet and disease with an eye on personal biochemistry and metabolic biomarkers to allow the military to optimize how individual soldiers eat.
  • Precision Defense, which will investigate the need for different diets for male and female soldiers to increase iron absorption, reduce reliance on muscle glycogen as fuel and minimize loss of lean muscle during strenuous military operations.
  • Four Pillars of Defense, which will extend a whole-health approach to Louisiana National Guard soldiers, their families and Louisiana first responders through AI-driven smartphone technology focused on nutrition, fitness, sleep, mental coping and resilience training.
  • Aim High, which will help youth and potential military recruits, including participants in the Louisiana National Guard’s 20-week residential Youth Challenge Program, get “Army ready.”

For the military, helping warfighters handle operational stress is a vital part of the mission and a key to good health. Good health is also good business.

About the Pennington Biomedical Research Center

The Pennington Biomedical Research Center is at the forefront of medical discovery as it relates to understanding the triggers of obesity, diabetes, cardiovascular disease, cancer and dementia. The Center conducts basic, clinical, and population research, and is a campus of the LSU System. The research enterprise at Pennington Biomedical includes over 530 employees within a network of 44 clinics and research laboratories, and 13 highly specialized core service facilities. Its scientists and physician/scientists are supported by research trainees, lab technicians, nurses, dietitians, and other support personnel. Pennington Biomedical is a state-of-the-art research facility on a 222-acre campus in Baton Rouge.

For more information, see   www.pbrc.edu .

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The Widest-Ever Global Coral Crisis Will Hit Within Weeks, Scientists Say

Rising sea temperatures around the planet have caused a bleaching event that is expected to be the most extensive on record.

A SCUBA diver with long flippers swimming over a spiny reef that is bleached white.

By Catrin Einhorn

The world’s coral reefs are in the throes of a global bleaching event caused by extraordinary ocean temperatures, the National Oceanic and Atmospheric Administration and international partners announced Monday.

It is the fourth such global event on record and is expected to affect more reefs than any other. Bleaching occurs when corals become so stressed that they lose the symbiotic algae they need to survive. Bleached corals can recover, but if the water surrounding them is too hot for too long, they die.

Coral reefs are vital ecosystems: limestone cradles of marine life that nurture an estimated quarter of ocean species at some point during their life cycles, support fish that provide protein for millions of people and protect coasts from storms. The economic value of the world’s coral reefs has been estimated at $2.7 trillion annually .

For the last year, ocean temperatures have been off the charts .

“This is scary, because coral reefs are so important,” said Derek Manzello, the coordinator of NOAA’s Coral Reef Watch program, which monitors and predicts bleaching events.

The news is the latest example of climate scientists’ alarming predictions coming to pass as the planet heats. Despite decades of warnings from scientists and pledges from leaders, nations are burning more fossil fuels than ever and greenhouse gas emissions continue to rise .

Substantial coral death has been confirmed around Florida and the Caribbean, particularly among staghorn and elk horn species, but scientists say it’s too soon to estimate what the extent of global mortality will be.

To determine a global bleaching event, NOAA and the group of global partners, the International Coral Reef Initiative, use a combination of sea surface temperatures and evidence from reefs. By their criteria, all three ocean basins that host coral reefs — the Pacific, Indian and Atlantic — must experience bleaching within 365 days, and at least 12 percent of the reefs in each basin must be subjected to temperatures that cause bleaching.

Currently, more than 54 percent of the world’s coral area has experienced bleaching-level heat stress in the past year, and that number is increasing by about 1 percent per week, Dr. Manzello said.

He added that within a week or two, “this event is likely to be the most spatially extensive global bleaching event on record.”

Each of the three previous global bleaching events has been worse than the last. During the first, in 1998, 20 percent of the world’s reef areas suffered bleaching-level heat stress. In 2010, it was 35 percent. The third spanned 2014 to 2017 and affected 56 percent of reefs.

The current event is expected to be shorter-lived, Dr. Manzello said, because El Niño, a natural climate pattern associated with warmer oceans, is weakening and forecasters predict a cooler La Niña period to take hold by the end of the year.

Bleaching has been confirmed in 54 countries, territories and local economies, as far apart as Florida , Saudi Arabia and Fiji. The Great Barrier Reef in Australia is suffering what appears to be its most severe bleaching event; about a third of the reefs surveyed by air showed prevalence of very high or extreme bleaching, and at least three quarters showed some bleaching.

“I do get depressed sometimes, because the feeling is like, ‘My God, this is happening,’” said Ove Hoegh-Guldberg, a professor of marine studies at the University of Queensland who published early predictions about how global warming would be catastrophic for coral reefs.

“Now we’re at the point where we’re in the disaster movie,” he said.

The most recent confirmation of widespread bleaching, prompting Monday’s announcement, came from the Western Indian Ocean, including Tanzania, Kenya, Mauritius, Seychelles and off the western coast of Indonesia.

Swaleh Aboud, a coral reef scientist at CORDIO East Africa, a research and conservation nonprofit group based in Kenya and focused on the Indian Ocean, said coral species that are known to be thermally resistant are bleaching, as are reefs in a cooler area considered to be a climate refuge.

Recently he visited a fishing community in Kenya called Kuruwitu that has worked to revive its reef. Many of the restored coral colonies had turned ghostly white. Others were pale, apparently on their way.

“Urgent global action is necessary to reduce future bleaching events, primarily driven by carbon emissions,” Mr. Aboud said.

Scientists are still learning about corals’ ability to adapt to climate change. Efforts are underway to breed coral that tolerate higher temperatures. In a few places, including Australia and Japan, coral appear to be migrating poleward, beginning to occupy new places. But scientists say a variety of factors, such as how much light penetrates the water and the topography of the sea floor, make such migration limited or unlikely in much of the world. Plus there’s the problem of ocean acidification; as seawater absorbs carbon dioxide from the atmosphere, it becomes more acidic, making it harder for coral to build and maintain reefs.

Dr. Hoegh-Guldberg, who has studied the impact of climate change on coral reefs for more than three decades, was an author of a 2018 report from the Intergovernmental Panel on Climate Change that found the world would lose the vast majority of its coral reefs at 1.5 degrees Celsius of warming, and virtually all at 2 degrees. Current pledges by nations put the Earth on track for about 2.5 degrees by 2100. Still, he has not lost hope.

“I think we will solve the problem if we get up and fight to solve the problem,” Dr. Hoegh-Guldberg said. “If we continue to pay lip service but not get on with the solutions, then we’re kidding ourselves.”

Catrin Einhorn covers biodiversity, climate and the environment for The Times. More about Catrin Einhorn

Learn More About Climate Change

Have questions about climate change? Our F.A.Q. will tackle your climate questions, big and small .

“Buying Time,” a new series from The New York Times, looks at the risky ways  humans are starting to manipulate nature  to fight climate change.

Big brands like Procter & Gamble and Nestlé say a new generation of recycling plants will help them meet environmental goals, but the technology is struggling to deliver .

The Italian energy giant Eni sees future profits from collecting carbon dioxide and pumping it  into natural gas fields that have been exhausted.

New satellite-based research reveals how land along the East Coast is slumping into the ocean, compounding the danger from global sea level rise . A major culprit: the overpumping of groundwater.

Did you know the ♻ symbol doesn’t mean something is actually recyclable ? Read on about how we got here, and what can be done.

Stock photo featuring UC's Mantei Center

UC engineering co-op medalist excels through 6 co-op experiences

Jaclyn bashore was awarded the herman schneider medal for co-op excellence.

headshot of Wajeeh Khan

2024 Herman Schneider award recipient Jaclyn Bashore.

Ever since she garnered an appreciation for chemistry in high school, fifth-year University of Cincinnati student Jaclyn Bashore has not looked back.

When she graduates with a chemical engineering degree and a minor in chemistry this spring, Bashore will have had six co-op experiences — along with a new full-time job at AbbVie, a biopharmaceutical research company with whom she did two co-op rotations. To commemorate her exceptional co-op work, the UC College of Engineering and Applied Science awarded Bashore the 2024 Herman Schneider Medal, an annual award given to a graduating senior who demonstrates outstanding success as a co-op student.

Jaclyn Bashore poses with the Herman Schneider statue outside of UC's Baldwin Hall.

When the time came to make a college decision, Bashore didn’t have to look far from her home in Tipp City, Ohio. In addition to enjoying the vibrant atmosphere of campus, Bashore was particularly drawn to UC because of the top-ranking cooperative education (co-op) program. The program, which enables students to gain practical real-world experience as they rotate semesters in the classroom with semesters of full-time, paid, co-op work, entrusts students with important and meaningful work from the get-go. Though College of Engineering and Applied Science (CEAS) students typically do five co-op rotations, Bashore completed six. She was eager to learn as much as she could, so she took the first opportunity she had to accelerate her career readiness.

“I did my first co-op with P&G as a consumer data analyst in the summer of freshman year, even though that is the one summer we have off here as engineering students,” Bashore said. “It was during the initial onset of COVID and a lot of it was remote, but I was eager to get my first look into the professional world, and I ended up learning a lot about professional communication in an industry setting.”

After acquiring skills in data analysis, coding tools and instructional media production during her time at P&G, Bashore transitioned into a more hands-on role as a process engineer with KraussMaffei, a plastics engineering extrusion company in Florence, Kentucky. Though she recognized that putting together and taking apart machines was a whole new ball game compared to coding, Bashore was able to quickly see tangible results from her work. During her two co-op rotations with KraussMaffei, she led research trials on customers and reported on extrusion trends to inform department strategy. She even prevented six-figure product damage costs to the organization by ensuring the correct alignment of screw elements and equipment pieces for water supply lines. 

Jaclyn Bashore at AbbVie's Waco, Texas, campus.

Armed with three full-time co-op experiences in just two years, Bashore next found herself in Chicago as a global packaging engineer for AbbVie, the first of her two rotations with the company. From the start, Bashore knew her experience would be rewarding. 

“My first exposure to AbbVie was when I visited their campus in Chicago. I thought the giant campus of 60 buildings was crazy cool — it was the first time I’d ever been on a campus that big, because every other place was just one building,” Bashore said. “The capacity alone was inspiring, but when I saw their impact on patient lives directly, I was even more excited. Seeing firsthand how medicine can positively affect people was really inspiring.”

During her first stint with AbbVie, Bashore worked on labelling technology for thermochromic ink labels that indicate temperature and time for vaccine syringes that have been exposed to various elements. Her investigative and design work resulted in AbbVie saving over $9 million per year in potential costs. Similar to her previous co-ops, Bashore further cemented her research and communication skills by partaking in several shipping studies for drug products and authoring supplemental documentation.

For her next co-op rotation, Bashore joined the Jacobs Engineering Group, an engineering consulting firm in Cincinnati. At Jacobs, she contributed to a large-scale biopharmaceutical plant design project that was built in Limerick, Ireland, for Eli Lilly. During construction of the plant, which was created to manufacture new medication to treat Alzheimer’s disease, Bashore collaborated cross-functionally to manage Leadership in Energy and Environmental Design (LEED) certifications for seven project sites, in addition to ensuring minimal environmental impact for the construction project.

Jaclyn Bashore visiting Baylor University in Waco, Texas.

For her final co-op rotation, Bashore returned to AbbVie to work at its Waco, Texas, location as a process engineer. She notably created a skills matrix, or the system outlining operational standards, and increased its product output by over 3.6 million units.

“My second stint was a lot more hands-on, because I was directly in the manufacturing plant, whereas initially I was splitting my time between labs and my desk to help out with documentation,” Bashore said. “Going from occasionally seeing and interacting with plants to being on the fast-paced plant floor was a totally different experience, but it was a lot of fun. The people and the passion of the organization made it so easy to be genuinely involved.”

In addition to her class and co-op work, Bashore served as an undergraduate research assistant for chemical engineering professor Jonathan Nickels , with her research focusing on molecular energy transfer and supporting the Cincinnati Children’s Hospital Medical Center. Balancing out the many responsibilities of her co-ops with the demands of the classroom and beyond was often difficult for Bashore. However, she was able to find motivation and further her sense of community and purpose by extending her involvement outside of school and work.

It’s always really rewarding to see the direct impact of your actions. I want to inspire others in the same ways that I was inspired.

Jaclyn Bashore, CEAS '24

“During my freshman year, I was required to volunteer because of my Cincinnatus scholarship,” Bashore said. “As I continued to dabble throughout volunteering opportunities, I noticed that I would go past the required hours. Volunteering introduced me to some amazing experiences and some of my best friends.”

Jaclyn Bashore poses with the Bearcat.

Some of Bashore’s favorite volunteering experiences include her time with the student-led Clean Up Cincy and with Sweet Cheeks Diaper Bank, an organization that provides women’s wellness and family assistance. She also has served her community as a member of Tau Beta Pi, the Society of Women Engineers and the Omega Chi Epsilon Honor Society, among other organizations. As a result of her widespread community involvement, she was selected to be a constituent on the American Institute of Chemical Engineers Philanthropy Committee. She was named to the Senior 100, which celebrates graduating UC students for their service and leadership.

“It’s always really rewarding to see the direct impact of your actions. I want to inspire others in the same ways that I was inspired,” Bashore said. “It’s not always easy to balance it all, but it’s definitely worth it. Along with journaling and my faith, being a catalyst to help others keeps me going.”

Upon graduating this spring, Bashore will return to AbbVie’s Waco plant as a full-time employee in its departmental rotation program. As she looks toward her future, she is filled with excitement and gratitude.  

Jaclyn Bashore with her parents.

“When I think about where I was freshman year compared to where I am now, it’s a little hard to believe,” Bashore said. “I never even thought I’d co-op outside of Cincinnati, since I used to be so adamant that I’d never leave. It’s hard to find the words to sum up so many feelings, but without any piece of it, I wouldn’t have the whole puzzle. I wouldn’t be here without the people around me, and I’m excited to continue learning and growing.”

Featured image at top: UC's Mantei Center. Photo/John Martini

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A gunman stole his twin from him. This is what he's learned about grieving a sibling

Rhitu Chatterjee

become a research scientist

At left, Zion Kelly holds a photo of his late twin brother Zaire Kelly. At right, Zion keeps this framed photo of he and his brother on the desk in his bedroom. Dee Dwyer for NPR hide caption

At left, Zion Kelly holds a photo of his late twin brother Zaire Kelly. At right, Zion keeps this framed photo of he and his brother on the desk in his bedroom.

The Science of Siblings is a new series exploring the ways our siblings can influence us, from our money and our mental health all the way down to our very molecules. We'll be sharing these stories over the next several weeks.

Zion Kelly still thinks of himself as a twin. By the time he and his fraternal twin, Zaire, were in their mid-teens, people often mistook Zaire as the older of the two brothers.

"He was taller than me, and his presence was just louder than mine," says the quiet, contemplative Zion, who is 23 now. "He was very social. He was extroverted. He had a lot of friends."

Despite their different personalities, Zion and Zaire were inseparable. They shared the same room, went to the same school, had the same group of friends and excelled at the same sports. "We played football," says Zion. "We ran track and we played basketball."

The Science of Siblings

Special Series

The science of siblings.

And when not doing an activity together, they were always talking. "We talked a lot during the weekdays, the weekends. We were really close."

But September 20, 2017, was one of the rare days when the brothers had gone their separate ways after school.

Zion went straight home, and Zaire went to the competitive, academic mentoring program both teens attended. Later that night, when Zaire was walking home, a stranger approached him. "He attempted to rob Zaire," says Zion, "and, in his attempt, shot him."

When Zion reached the hospital where Zaire was taken, he could already see on the faces of his family that something was terribly wrong. Zaire had been pronounced dead. Zion was heartbroken. "I immediately broke down," Zion says. The Kelly brothers were 16.

Zion has spent the past seven years trying to find his way through grief and cope with the huge void left behind by Zaire's death.

A dearth of research

Most people who grieve the death of a sibling, do so well into adulthood. But every year, an estimated 60,000 children in the United States are bereaved by the death of a sibling. (And in the past few years, firearms have become the top cause for children's death.)

And yet, researchers know very little about the short and long-term impacts of such a loss. "The vast majority of studies that have focused on bereaved youth have tended to focus on the death of a parent," says psychologist Julie Kaplow , at the Trauma and Grief Center at the Meadows Mental Health Policy Institute, in Houston, Texas.

In the womb, a brother's hormones can shape a sister's future

  • In the womb, a brother's hormones can shape a sister's future

Kaplow and her colleagues, who work regularly with kids who have lost a sibling, say the death of a sibling is traumatic for the siblings left behind.

And while most such bereaved kids "will go on to lead healthy, happy, functional lives," says Kaplow, a significant minority are at risk of becoming stuck in their grief.

"They may have trouble functioning in their daily life," she says. "Their grief can also be accompanied by significant depression, or if the death is under traumatic circumstances, it can be accompanied by post-traumatic stress."

Finding purpose through grief

In the weeks and months after Zaire's death, Zion struggled to accept reality. "I was in denial," he says. "I couldn't really believe it."

What helped him cope, he says, was the love and support of his parents, his other siblings, extended family and friends. "I think because I'm a twin, a lot of people reached out to me."

Eventually, Zion came to accept his brother's death, and his loved ones helped him see that together they could keep his memory alive. "We just try to keep his name alive, keep his legacy alive by always having his pictures up, always talking about him."

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Zion Kelly keeps a screensaver on his phone of he and his brother as young kids. Dee Dwyer for NPR hide caption

Zion Kelly keeps a screensaver on his phone of he and his brother as young kids.

Even now, the screensaver on his phone is a photo of him and Zaire when they were nearly 6 years old, both wearing yellow team jerseys and grinning at the camera.

Within a few months after Zaire's death, Zion also started speaking publicly about his loss to raise awareness about gun violence.

"I started to become more vocal," says Zion, "just telling my story and drawing attention to gun violence in Washington D.C."

Then, on Feb 14, 2018, 14 high school students and three adults died in a school shooting in Parkland, Florida. As teenagers across the country organized to protest gun violence in the wake of the Marjorie Stoneman Douglas High School shootings, Zion teamed up with them.

The introverted, soft-spoken teenager addressed the hundreds of thousands of people who gathered in the nation's capital that spring for the March for Our Lives rally to call for action against gun violence. Later, he traveled around the country and even to Italy to share his personal story of losing his twin brother to gun violence.

become a research scientist

Zion Kelly's high school yearbook documented his efforts to bring attention to gun violence during the March for Our Lives rally. Dee Dwyer for NPR hide caption

"That's when I felt like he was really living through me, because the whole world, eventually, got to know his name, got to know my story," says Zion. He also felt that he was making his brother proud through his public speaking and activism. It gave him a passion and a purpose to focus on.

That can be a healthy way of coping, says Kaplow, and it's something she and her colleagues have seen in many grieving siblings.

"Living the legacy of the sibling who died, or wanting to do things that would make them proud," says Kaplow. "Or doing something to transform the circumstances [of their sibling's death] to something meaningful that can help other people not have to suffer in the same way."

National Siblings Day is a celebration born of love — and grief

National Siblings Day is a celebration born of love — and grief

Zion was doing all three of those things with his activism. Kaplow notes it can also be stressful, especially when the surviving sibling feels an unspoken pressure to fill in the void left behind by their sibling. "That can create a lot of distress – a lot of identity distress."

That identity struggle has been part of Zion's grief. "I was really struggling to find my identity of being a twin, but not really being a twin anymore," he says.

All his efforts to be more extroverted like Zaire had left him feeling exhausted. "I just felt drained trying to find myself," he says, "trying to find who I am, instead of thinking of the two of us."

"Disenfranchised grief" for a sibling

Many children and teens grieving the death of a sibling don't have the kind of emotional support Zion did after his brother's death. Even his older sister, who was in college at the time in Philadelphia felt lonely and struggled to cope with her grief once she returned to campus after Zaire's funeral, he says.

become a research scientist

A family portrait honors the life of the late Zaire Kelly. Dee Dwyer for NPR hide caption

That is a common experience among grieving siblings, says Kaplow. Usually when a child dies, everyone around the family focuses on supporting the parents.

"There is less of a focus on the siblings who are left behind, and we know that their grief can be just as powerful and potent as the caregivers' grief."

And so these children end up experiencing what she describes as "disenfranchised grief."

"Somehow their grief doesn't feel as important or relevant as the grief of their parents," says Kaplow. "And [that] is a big problem."

That was Meghan Britton's experience after she lost her only brother, Andrew, when he was seven years old. She was 12 at the time.

become a research scientist

Meghan Britton holds her childhood journal and her brother's teddy bear at her home in Fort Wayne, Ind. The journal was given to her by her mother's friend after the death of her brother. Kaiti Sullivan for NPR hide caption

In the weeks and months after Andrew's death, her parents struggled to cope. "They were just trying to survive the experience," says Meghan. And "everyone that came to visit, they focused on my parents."

No one knew what to say to her. If they did, it was with advice to be "strong" for her parents, or to ask her how they were doing.

"It was really lonely," she says. "And now that I didn't have any siblings anymore, there wasn't anyone that I could really talk to about it."

She struggled to process her loss and struggled to resume her normal life, especially school.

"I had a hard time going back to school because it just felt so jarring," she says. "Last week my brother passed away, and then this week, I'm supposed to go back to school. That was weird. That was hard."

become a research scientist

Meghan and her brother Andrew in Michigan. The Britton family hide caption

Meghan and her brother Andrew in Michigan.

What made things harder, she says, is that neither her parents, nor anyone at school talked about Andrew after his death. She remembers thinking, "Did they not think about him anymore?"

What did help her in those early months and years, she says, is a present from her mother's best friend on the day of Andrew's funeral.

"She was a really frugal person, and so she wouldn't spend money unless it was critical," says Meghan. "And she pulled me out of the funeral home and took me to a Hallmark store."

At the store, she bought Meghan a journal and a pen. "She said, 'I want you to write down how you're feeling, because you need to get this out. You need to capture these things,'" Meghan recalls. "That's something that still, to this day, has served me well."

Eventually, Meghan also sought therapy, which helped her understand and accept her own emotions around her brother's death. And she began other healthy ways to cope with her grief – mainly by bringing up memories of Andrew – the sweet, funny and even annoying moments she shared with him.

For example, his habit of running into her, his head pointed at her belly, aiming to knock her over, and his love of science and Albert Einstein. "He dressed up as [Einstein] one year for Halloween," Meghan says.

Kids who are grieving need the help and support of their caregivers and other adults to cope, says Kaplow. "What we want to do is provide kids with enough of the coping skills needed to deal with that grief over time," she says.

Living with grief

Today, Zion lives in Washington, D.C., and works at College Bound, the same competitive academic mentoring program that he and Zaire attended when they were in high school. He shares a two-bedroom apartment with a friend.

But Zaire's absence still looms large in his life. And so he has filled his room with Zaire's photos – his way of keeping memories of his brother alive. Their high school yearbook – with photos of himself and Zaire in it – sits on top of a dresser along with the family photos.

become a research scientist

In his bedroom, Zion Kelly keeps his brother's memory alive by displaying photos of them in happier times. Dee Dwyer for NPR hide caption

In his bedroom, Zion Kelly keeps his brother's memory alive by displaying photos of them in happier times.

He also tries to "be intentional" about how he lives his daily life. "[I] wake up every day and just try to live every day like it's your last day because you never really know when it's going to be your last day."

And when things feel really hard, he can still rely on his family for unconditional love and support. "If I have a lot going on, I can always go back home," he says. "I feel rejuvenated around my family, spending time with them."

Meghan, now in her mid-40s, is a mother of two girls – 9 and 12 years old. She's had three decades of learning to cope with her brother's absence and has come to accept the loss. Still, she says, she's been surprised by all the times waves of grief took her by surprise over the years. When her daughters were born, for instance, she was overcome with grief, realizing they would never know their uncle.

become a research scientist

Meghan, with her brother Andrew, says that she is still surprised by all the times waves of grief took her by surprise over the years. The Britton family hide caption

More recently, when her grandparents were terminally ill and her mother and her four siblings came together to care for their parents and support each other in their grief after they died.

"I was just like, 'Son of a gun, I'm going to have to do this alone someday, and that is going to suck,'" she says. "Because, that's not how it was supposed to work."

The long tail of grief with such losses is normal, says Kaplow.

"As a society, we need to move away from this idea that we want the grief to go away, because it does not go away," she says. "This is a natural response of the love we have for the person who died, and we don't want it to go away."

Kids who are grieving the death of a sibling need help in learning that, she adds. They need help knowing that they may be dealing with reminders of their loss for the rest of their lives.

More from the Science of Siblings series:

  • The order your siblings were born in may play a role in identity and sexuality
  • Blended families are common. Here are tips to help stepsiblings get along
  • Science of Siblings
  • children grief
  • child psychology

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  25. Pennington Biomedical Supports the U.S. Military Every Day

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