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Life Scientist Jobs (NOW HIRING)

Teacher, Life Science

Bangor, PA · On-site

$47K - $108K/yr

High School Teaching/Science - Life Science Date Posted: 9/8/2026 Location: Bangor High School Closing Date: Until Filled Life Science Teacher, Grades 9-12 - Bangor High School * Current Maine ...

Teacher, Life Science

Bangor, ME · On-site

$47K - $108K/yr

Life Science Teacher, Grades 9-12 Bangor High School * Current Maine certification in Life Science (395-S) required * Additional endorsement in Physical Science (350-S) preferred * Strong academic ...

Senior Business Analyst - Life Sciences

$94K - $122K/yr

About fme Life Sciences : fme Life Sciences focuses on Business Solution deployments leveraging Enterprise Content Services platforms for clients in the Life Sciences Industry. fme Life Sciences is ...

NJ · On-site

$125K - $155K/yr

Senior Scientist, Product Planning and Development, Scientific Product Strategy - Life Science & Biotech Reagents Position Type Full-time, Strategic/Front-end Portfolio Management Compensation The ...

DIRECTOR, LIFE SCIENCES

Annapolis, MD · On-site

$120K - $190K/yr

To promote the state's life sciences industry the incumbent will cultivate and conduct outreach, coordinate with various Commerce departments, serve as a representative of the state at industry ...

We're hiring Anthropic's first dedicated Life Sciences Counsel to work side-by-side with our researchers as they work to advance biomedical progress. You'll serve as their trusted counsel on a wide ...

As we continue to grow our Healthcare & Life Sciences proposition in North America, we're looking for our first onshore Life Sciences Underwriter to join our team. This is a unique opportunity to ...

Life Science Underwriter

New York, NY · On-site

$120K - $160K/yr

Life Science Underwriter Department: Specialty Lines Employment Type: Permanent - Full Time Location: US - New York Reporting To: Kyle Laudadio Compensation: $120,000 - $160,000 / year Description As ...

Life Science Underwriter

Manhattan, NY · On-site

$120K - $160K/yr

Life Science Underwriter Department: Specialty Lines Employment Type: Permanent - Full Time Location: US - New York Reporting To: Kyle Laudadio Compensation: $120,000 - $160,000 / year Description As ...

Life Sciences Associate

Manhattan, NY · On-site

$70K - $120K/yr

At Berkley Life Sciences, we insure the future of life science innovators today. We do so by serving as a preferred market for the life science industry around the globe, offering a broad range of ...

$70K - $120K/yr

At Berkley Life Sciences, we insure the future of life science innovators today. We do so by serving as a preferred market for the life science industry around the globe, offering a broad range of ...

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Life Scientist information

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How much do life scientist jobs pay per hour?

As of Sep 13, 2026, the average hourly pay for life scientist in the United States is $43.39, according to ZipRecruiter salary data. Most workers in this role earn between $26.68 and $55.53 per hour, depending on experience, location, and employer.

What is a life scientist?

Life scientists are professionals who study living organisms and life processes. This field includes a variety of specializations, such as biology, microbiology, genetics, zoology, and ecology. Life scientists conduct research to understand how living things function, grow, evolve, and interact with their environments. Their work often contributes to advancements in medicine, agriculture, environmental conservation, and biotechnology.

What are the key skills and qualifications needed to thrive as a life scientist?

To thrive as a Life Scientist, you need a solid background in biology or related sciences, often supported by a relevant undergraduate or graduate degree. Familiarity with laboratory equipment, data analysis software, and techniques such as PCR, microscopy, and chromatography is typically required. Critical thinking, attention to detail, and strong communication skills help distinguish top performers in this field. These skills and qualities are essential for conducting accurate research, troubleshooting experiments, and effectively sharing findings with the scientific community.

What are some common challenges life scientists face when conducting research projects?

Life scientists often encounter challenges such as securing funding, managing complex datasets, and staying current with rapidly evolving technology and methodologies. Collaborating with multidisciplinary teams can also present communication hurdles, as professionals may have different expertise and priorities. Additionally, balancing laboratory work with administrative tasks and publication deadlines can require strong organizational and time management skills. Overcoming these challenges often leads to valuable professional growth and more impactful research outcomes.

What is the difference between Life Scientist vs Biologist?

AspectLife ScientistBiologist
Required CredentialsBachelor's or Master's in biology, biochemistry, or related fields; often requires research experienceBachelor's or higher in biology or related disciplines; research experience beneficial
Work EnvironmentResearch labs, healthcare settings, biotech companies, academic institutionsResearch labs, fieldwork, environmental agencies, academic settings
Employer & Industry UsagePharmaceuticals, biotech, healthcare, academiaEnvironmental agencies, research institutions, academia, conservation organizations

While both roles involve biological sciences, a Life Scientist typically works in research and development within healthcare or biotech industries, focusing on applied research. A Biologist often conducts fieldwork or laboratory research related to natural ecosystems or organisms. The roles overlap in education and work environment but differ in focus and application.

How much do life scientists get paid?

The average salary for a life scientist varies by experience, location, and specialization, but typically ranges from $60,000 to $100,000 annually. Entry-level positions may start around $50,000, while experienced professionals with advanced skills or certifications can earn over $120,000 per year.

What can I do with a life scientist degree?

A life scientist degree prepares individuals for careers in research, healthcare, biotechnology, and environmental science. Graduates can work as research scientists, laboratory technicians, biotechnologists, or regulatory specialists, often requiring skills in data analysis, laboratory techniques, and scientific communication.

What does a life scientist do?

A life scientist studies living organisms and biological processes, often conducting experiments, analyzing data, and developing new knowledge in fields such as biology, genetics, or ecology. They may work in laboratories, research institutions, or healthcare settings, using tools like microscopes and laboratory equipment, and often require specialized training or degrees in life sciences.

What jobs can I do with a life scientist?

A life scientist can work in roles such as research scientist, laboratory technician, or biologist, often in settings like research institutions, healthcare, or biotech companies. These roles typically require skills in data analysis, laboratory techniques, and knowledge of biological systems, with opportunities to specialize in areas like genetics, microbiology, or ecology.
More about Life Scientist jobs

What cities are hiring for Life Scientist jobs?

Cities with the most Life Scientist job openings:

What states have the most Life Scientist jobs?

States with the most job openings for Life Scientist jobs include:

What are popular job titles related to Life Scientist jobs?

For Life Scientist jobs, the most frequently searched job titles are:

Infographic showing various Life Scientist job openings in the United States as of August 2026, with employment types broken down into 1% As Needed, 79% Full Time, 15% Part Time, and 5% Contract. Highlights an 90% Physical, 2% Hybrid, and 8% Remote job distribution, with an average salary of $90,244 per year, or $43.4 per hour.

Senior / Principal ML Scientist, Foundation Models for Life Sciences

San Francisco, CA • On-site

Full-time

Re-posted 18 days ago


Job description

Your Impact at LILA

Lila is building a platform where AI and automation co-evolve to solve the hardest problems in medicine. Within Life Science AI (LSAI), Machine Learning engineers build and operate the systems that turn foundation models over biological sequence, molecular structure, and experimental data into production capabilities powering automated scientific discovery across Lila's life science domains.

We are seeking a Principal ML Engineer to design, build, and scale the ML infrastructure behind those models. Much of the team's current work is in structure prediction and co-folding for antibody and biologics design, alongside sequence design and multimodal scientific reasoning. You will own critical systems end to end, from training pipelines and distributed compute to model deployment and integration into Lila's closed-loop discovery engine.

This is a high-impact IC role for someone who operates at the intersection of ML systems engineering and life science applications. You will shape the technical direction for how ML models are trained, evaluated, and deployed at scale, collaborate closely with AI scientists and experimental researchers to close the computational-experimental loop, and drive Lila's ML infrastructure toward the next generation of capabilities.

What You'll Be Building

  • Design, build, and optimize large-scale training pipelines for structure prediction, co-folding, and other generative models on biological and chemical data, including distributed training across GPU clusters
  • Own production ML systems end to end: model deployment, serving infrastructure, monitoring, and reliability for models used in Lila's scientific workflows
  • Architect ML infrastructure that supports rapid iteration across structure prediction, sequence design, and multimodal scientific reasoning workloads
  • Make structure prediction and co-folding models fast and cheap enough to run at campaign scale, where inference volume is often the bottleneck on scientific throughput
  • Drive the engineering side of Lila's "Lab-in-the-Loop" lifecycle: build pipeline models, integrate experimental feedback loops, and ensure model outputs are actionable for downstream scientific workflows
  • Define and advance ML engineering standards, tooling, and best practices across the AI organization
  • Collaborate with AI scientists to translate research prototypes into robust, scalable production systems, bridging the research-to-deployment gap

What You'll Need to Succeed

  • Master's degree or higher in Computer Science, Machine Learning, or a related quantitative field (or Bachelor's with equivalent professional experience)
  • Extensive hands-on experience building and operating production ML systems at scale
  • Deep expertise in distributed training infrastructure, including experience with large-scale GPU clusters (AWS, GCP, or on-prem)
  • Strong software engineering fundamentals: system design, production-grade code, CI/CD, observability, and reliability practices
  • Proficiency in ML frameworks (PyTorch, JAX, or TensorFlow) with experience optimizing training and inference performance
  • Demonstrated ability to drive technical direction for ML infrastructure independently, from architecture through implementation
  • Track record of cross-functional collaboration with research scientists, translating between ML methodology and engineering execution

Bonus Points For

  • Experience building training or inference infrastructure for generative models applied to biological sequences, molecular structures, or scientific data
  • Experience supporting structure prediction or co-folding workloads, including AlphaFold-derived methods (e.g., Boltz, Protenix), diffusion models, or protein language models
  • Experience with agentic frameworks, active learning loops, or closed-loop experimental workflows
  • Contributions to open-source ML tools, frameworks, or infrastructure projects
  • Familiarity with at least one life science domain (structural biology, protein engineering, molecular biology, genomics, or nucleic acid design)
  • Experience with model evaluation frameworks for scientific applications where ground truth is sparse or delayed