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Remote Biochemistry Jobs in San Rafael, CA (NOW HIRING)

This role is full-time and open to NYC-based or remote candidates. Our office is located in Gramercy. Key Responsibilities: * Design and execute IRB protocols -- Own prospective study protocols from ...

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Remote Biochemistry information

See San Rafael, CA salary details

$88.1K

$168.3K

How much do remote biochemistry jobs pay per year?

As of Aug 18, 2026, the average yearly pay for remote biochemistry in San Rafael, CA is $164,843.00, according to ZipRecruiter salary data. Most workers in this role earn between $167,200.00 and $167,200.00 per year, depending on experience, location, and employer.

What is remote biochemistry?

A Remote Biochemistry job involves conducting biochemical research, analysis, or lab-related tasks from a remote location, often using digital tools and virtual collaboration platforms. Professionals in this role may analyze data, write reports, assist in research projects, or develop biochemical models without needing to be physically present in a lab. Some positions may require access to remote lab facilities, while others focus on computational biochemistry, bioinformatics, or scientific consulting. Strong communication skills and proficiency with specialized software are essential for success in this field.

What are the key skills and qualifications needed to thrive in remote biochemistry?

To excel in a Remote Biochemistry role, you typically need an advanced degree in biochemistry or a related field, strong analytical and research skills, and a solid background in laboratory techniques. Familiarity with digital lab data management systems, statistical analysis software, and virtual collaboration tools is important, along with any relevant certifications in laboratory safety or data handling. Outstanding attention to detail, self-motivation, and effective written communication help remote biochemists manage projects and collaborate with dispersed teams. These abilities ensure accurate research outcomes, seamless remote coordination, and ongoing contributions to scientific projects despite physical distances.

What are the main challenges of working as a biochemist in a remote setting?

Working as a remote biochemist often means adapting traditional laboratory tasks to a virtual environment, which may involve analyzing data, designing experiments, or collaborating with onsite teams from a distance. One common challenge is maintaining effective communication and coordination with lab-based colleagues when you are not physically present. To overcome these challenges, remote biochemists frequently use video conferencing, project management software, and shared databases to stay aligned with ongoing research and project goals. Success in this role requires strong digital collaboration skills, proactive problem-solving, and the ability to independently manage time and tasks.

Are remote biochemists in high demand?

Remote biochemists are in increasing demand due to growth in biotechnology, pharmaceuticals, and research sectors that require expertise in molecular biology, lab techniques, and data analysis. Many organizations seek professionals with strong analytical skills and familiarity with laboratory tools, making remote opportunities more available as companies adopt flexible work arrangements.

Can remote biochemists work from home?

Remote biochemists can often work from home, especially for tasks such as data analysis, report writing, and research planning that do not require laboratory access. However, roles involving laboratory experiments, sample handling, or equipment use typically require on-site presence. The ability to work remotely depends on the specific job responsibilities and employer policies.

What job categories do people searching Remote Biochemistry jobs in San Rafael, CA look for?

The top searched job categories for Remote Biochemistry jobs in San Rafael, CA are:

What cities near San Rafael, CA are hiring for Remote Biochemistry jobs?

Cities near San Rafael, CA with the most Remote Biochemistry job openings:

Infographic showing various Remote Biochemistry job openings in San Rafael, CA as of August 2026, with employment types broken down into 88% Full Time, 3% Part Time, and 9% Contract. Highlights an 47% In-person, and 53% Remote job distribution, with an average salary of $164,843 per year, or $79.3 per hour.

Research Scientist, Interpretability

Anthropic

San Francisco, CA • On-site, Remote

Full-time

Re-posted 28 days ago


Job description

About the role:

When you see what modern language models are capable of, do you wonder, "How do these things work? How can we trust them?"

The Interpretability team at Anthropic is working to reverse-engineer how trained models work because we believe that a mechanistic understanding is the most robust way to make advanced systems safe. We're looking for researchers and engineers to join our efforts. 

People mean many different things by "interpretability". We're focused on mechanistic interpretability, which aims to discover how neural network parameters map to meaningful algorithms. Some useful analogies might be to think of us as trying to do "biology" or "neuroscience" of neural networks using "microscopes" we build, or as treating neural networks as binary computer programs we're trying to "reverse engineer".

A few places to learn more about our work and team at a high level are this introduction to Interpretability from our research lead, Chris Olah; a discussion of our work on the Hard Fork podcast produced by the New York Times, and this blog post (and accompanying video) sharing more about some of the engineering challenges we'd had to solve to get these results. Some of our team's notable publications include A Mathematical Framework for Transformer Circuits, In-context Learning and Induction Heads, Toy Models of Superposition, Scaling Monosemanticity, and our Circuits' Methods and Biology papers. This work builds on ideas from members' work prior to Anthropic such as the original circuits thread, Multimodal Neurons, Activation Atlases, and Building Blocks.

We aim to create a solid foundation for mechanistically understanding neural networks and making them safe (see our vision post). In the short term, we have focused on resolving the issue of "superposition" (see Toy Models of Superposition, Superposition, Memorization, and Double Descent, and our May 2023 update), which causes the computational units of the models, like neurons and attention heads, to be individually uninterpretable, and on finding ways to decompose models into more interpretable components. Our subsequent work found millions of features in Sonnet, one of our production language models, represents progress in this direction. In our most recent work, we develop methods that allow us to build circuits using features and use this circuits to understand the mechanisms associated with a model's computation and study specific examples of multi-hop reasoning, planning, and chain-of-thought faithfulness on Haiku 3.5, one of our production models." This is a stepping stone towards our overall goal of mechanistically understanding neural networks.

We often collaborate with teams across Anthropic, such as Alignment Science and Societal Impacts to use our work to make Anthropic's models safer. We also have an Interpretability Architectures project that involves collaborating with Pretraining.

Responsibilities:
  • Develop methods for understanding LLMs by reverse engineering algorithms learned in their weights

  • Design and run robust experiments, both quickly in toy scenarios and at scale in large models

  • Create and analyze new interpretability features and circuits to better understand how models work.

  • Build infrastructure for running experiments and visualizing results

  • Work with colleagues to communicate results internally and publicly

You may be a good fit if you:
  • Have a strong track record of scientific research (in any field), and have done some work on Interpretability

  • Enjoy team science - working collaboratively to make big discoveries

  • Are comfortable with messy experimental science. We're inventing the field as we work, and the first textbook is years away

  • You view research and engineering as two sides of the same coin. Every team member writes code, designs and runs experiments, and interprets results

  • You can clearly articulate and discuss the motivations behind your work, and teach us about what you've learned. You like writing up and communicating your results, even when they're null

To learn more about the skills we look for and how to prepare for this role, see our blog post - So You Want to Work in Mechanistic Interpretability?

Familiarity with Python is required for this role.

Role Specific Location Policy:
  • This role is based in San Francisco office; however, we are open to considering exceptional candidates for remote work on a case-by-case basis.