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Computational Scientist (Biology)

axiombio · SF Global HQ
Full-timeGeneralHealthcare$111,000–$150,000/yr
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About the Computational Scientist role

Computational Scientist positions focus on delivering results in their domain. This page aggregates open Computational Scientist roles and what employers typically expect.

About Axiom Axiom is building an ecosystem to compound technology which will replace animal testing and, over time, reshape how clinical trials are run. We partner with leading organizations to transform capital into proprietary data and machine learning models, then deploy those models across the world’s largest pharmaceutical companies to improve how medicines are discovered and developed. It starts with deeply understanding the needs of drug hunters inside large pharma, especially around drug toxicity and safety. Those needs shape the world-class datasets we build from scratch. We then use that data to advance our own ML research, while also collaborating with leading AI labs to improve frontier models’ ability to reason over Axiom’s data inside Axiom’s agent harness. This creates a compounding loop: deeper customer understanding shapes the data we generate; better data improves frontier models, Axiom’s fine-tuned models, and our agentic infrastructure; stronger models and tooling expand the capabilities we can offer; and those capabilities are forward deployed into pharma's drug discovery workflows, where scientists use them to solve the highest value drug discovery problems. In turn, this helps us identify the next problems to tackle. Today, we are focused on solving drug-induced liver injury through an integrated data and agentic system already being used by 7 of the top 20 pharma companies and several of the world’s most innovative biotechs. Over time, Axiom will invest billions into the world’s largest human datasets across all the major organ systems, paired with an agentic harness that uses this data to predict human drug outcomes dramatically better than animals and phase 1 clinical trials. What you will do You will help build the computational and biological foundation for Axiom’s toxicity prediction platform. - Own the exploration and analysis of massive multimodal toxicity datasets spanning high-content imaging, transcriptomics, proteomics, ADME, mass spec, and functional cellular readouts. - Identify subtle biological signals that distinguish safe compounds from toxic compounds across human-relevant systems such as liver, heart, kidney, and immune biology. - Turn noisy, high-dimensional experimental data into clear biological insights, robust features, quality metrics, and model-ready datasets. - Analyze high-content imaging and transcriptomic data from primary human hepatocytes and multicellular hepatic systems, including phenotypes related to mitochondrial dysfunction, cholestasis, lipid accumulation, lysosomal stress, ER stress, cytotoxicity, and cellular morphology. - Conduct detailed model error analyses to understand what biology our models capture, where they fail, and what new data or assays are needed to improve them. - Collaborate with ML researchers to improve models that predict human toxicity as a function of dose, exposure, Cmax, in vitro potency, chemical structure, and biological response. - Develop computational approaches for extracting meaningful signal from imaging, transcriptomic, proteomic, and biochemical assays. - Design and improve quality control systems for large-scale, high-throughput biological datasets. - Work closely with wet lab scientists to shape new assays optimized not just for biological plausibility, but for predictive modeling. - Partner with leading pharma and biotech teams to interpret molecule toxicity profiles and help them understand the biology driving model predictions. - Help invent the future of computational toxicology: AI systems that do not just classify compounds, but explain mechanisms, reason over evidence, and guide better drug design. What we are looking for We are looking for someone who is unusually strong at both biology and computation. - You are a biologist who taught yourself to code because existing tools were not good enough for the questions you wanted to answer. - You are a computational scientist who loves being close to the raw experimental dat…

Salary estimate

$111,000 – $150,000/yr
Provided by the employer.

Skills for this role

Machine Learning

Resume tips for Computational Scientist applicants

Interview preparation

Prepare concrete STAR-format stories that show Computational Scientist outcomes you drove.

Research the employer's product and recent news before the interview.

Be ready to explain how you'd approach a typical Computational Scientist problem end to end.

Have thoughtful questions ready about the team, tools and success metrics.

About axiombio

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