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Internship Computational Structural Biology Jobs

Computational Protein Designer

San Francisco, CA · On-site

$24.25 - $29.50/hr

You have a PhD (or equivalent industry experience) in computational biology, bioinformatics, computer science, biochemistry, structural biology, physics, biophysics, bio/chem engineering, or a ...

Required : • Strong background in computational biology, computational chemistry, bioinformatics, or related field • Familiarity with ML and physics-based tools in structural biology, molecular ...

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Internship Computational Structural Biology information

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How much do internship computational structural biology jobs pay per hour?

As of Aug 19, 2026, the average hourly pay for internship computational structural biology in the United States is $19.31, according to ZipRecruiter salary data. Most workers in this role earn between $16.11 and $20.91 per hour, depending on experience, location, and employer.

What is the difference between Internship Computational Structural Biology vs Computational Structural Biology?

AspectInternship Computational Structural BiologyComputational Structural Biology
CredentialsTypically students or early-career individuals pursuing relevant degreesRequires advanced degrees (Master's or PhD) in related fields
Work EnvironmentInternship programs, research labs, academic settingsFull-time research, industry, or academic positions
Employer & Industry UsageResearch institutions, universities, biotech companiesResearch labs, biotech, pharmaceutical companies
Search & Comparison IntentLooking for entry-level or training opportunitiesSeeking professional roles or research positions

Internship Computational Structural Biology is an entry-level, training-focused position for students or early-career individuals gaining experience. In contrast, Computational Structural Biology refers to full-time professional roles involving advanced research and responsibilities in the field.

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Infographic showing various Internship Computational Structural Biology job openings in the United States as of August 2026, with employment types broken down into 10% Internship, 56% Full Time, 32% Part Time, 1% Temporary, and 1% Contract. Highlights an 77% Physical, 2% Hybrid, and 21% Remote job distribution, with an average salary of $40,174 per year, or $19.3 per hour.

Research Scientist, Life Sciences (Computational)

Anthropic

San Francisco, CA • On-site

Full-time

Re-posted 3 days ago


Job description

About the team

Anthropic's Life Sciences team is building a world-class research group focused on making fundamental biological discoveries. The team combines cutting-edge AI with hands-on biological research, positioning Anthropic at the forefront of AI-accelerated scientific discovery.

About the role

We're seeking an exceptional Research Scientist to join the team. This role combines deep computational biology expertise with frontier AI capabilities, positioning Anthropic at the forefront of AI-driven scientific discovery.

As one of the first computational members of this Life Sciences research group, you'll work on a high-impact team that operates at the intersection of computational and experimental biology. You'll bring broad computational biology experience to bear across the team's projects, driving discoveries from large-scale computational analysis of biological data through to results our experimental scientists can test, and moving flexibly between problems as the science demands. You'll have substantial access to Claude and you'll help establish how computational biology operates at Anthropic.

This role offers a unique opportunity to shape how AI transforms biological research. You'll work with some of the world's best AI researchers while tackling problems that matter deeply for scientific understanding and biomedicine. If you're excited about using your computational expertise to make fundamental biological discoveries and guide the development of transformative AI systems, we want to hear from you.

Key responsibilities
  • Build, run, and maintain the analysis pipelines that back the team's experimental programs: sequence analysis at petabyte scale, structural bioinformatics, phylogenetic and comparative genomics, design and analysis of high-throughput functional screens, biological sequence modeling, etc.
  • Partner directly with experimental biologists to design experiments that produce high-quality data, and turn results around fast enough to immediately inform the next experiment
  • Draw on the literature and curated biological knowledge bases alongside primary data to generate and prioritize hypotheses for experimental follow-up
  • Stand up and maintain the team's computational infrastructure: data ingestion, workflow orchestration, internal databases, and the interfaces that make all of it accessible to both researchers and AI agents
  • Use Claude and our internal agent frameworks heavily in your own work, and feed what you learn back to the model-improvement and product teams as evaluations, datasets, and concrete failure cases
  • Pick up analyses across projects as priorities shift; we're looking for breadth and flexibility over a single deep specialty
Minimum qualifications
  • Have a PhD in computational biology, bioinformatics, genomics, biophysics, machine learning, computer science, or a related quantitative or biological field, or equivalent industry research experience
  • Have a track record of computational biology research you have led end to end, from question to result, with evidence of impact (for example publications, preprints, released datasets or tools, or research that changed a program's direction)
  • Have demonstrated breadth across multiple areas of computational biology
  • Are proficient in one or more programming languages used in scientific computing and comfortable working on large datasets in Linux and cloud compute environments
  • Can take an ambiguous biological question, scope the analysis, and produce a result an experimentalist can act on
  • Communicate computational results clearly to both biologists and ML researchers
Preferred qualifications
  • Are comfortable navigating ambiguity and developing solutions in rapidly evolving research environments
  • Are results-oriented, with a bias towards flexibility and impact
  • Hands-on experience in experimental biology, or a track record of designing experiments side by side with experimentalists
  • Experience building tools, pipelines, or agentic systems on top of LLMs, or training models on biological sequence data
  • Deep expertise in one or two areas of computational biology (for example structural biology, metagenomics, single-cell genomics, or protein design) on top of the required breadth