About BioStack
\nBioStack is building the data layer for AI-native healthcare and drug discovery. We work with leading AI labs, human data companies, and frontier biotech teams to source, structure, and deliver high-value clinical and preclinical datasets for model training, evaluation, and deployment.
\nWe sit at the intersection of healthcare, frontier AI, and data infrastructure. Our work spans medical institutions, clinics, imaging centers, and data partners globally, turning messy real-world clinical workflows into AI-ready products that matter.
\nThe long-term vision is to make high-quality healthcare accessible to everyone
\nand radically improve drug discovery by linking real-world healthcare data with genomics,
\nimaging, biomarkers, and experimental data. This creates a foundation for AI systems that can
\nlearn from millions of patient journeys, understand why treatments work for some patients and
\nfail for others, personalize care based on clinical and genomic context, identify the right
\ninterventions earlier, and uncover new therapeutic opportunities from the connection between
\nbiology and real-world outcomes.
\nBioStack is backed by PeakXV, Y Combinator, Afore Capital, SV Angel as well as high-profile angels from OpenAI, Meta and Google DeepMind.
\nAbout the Role
\nAs an RL Engineer at BioStack, you will build reinforcement learning environments and post-training systems for healthcare AI.
\nBioStack is building the data and environment layer for medical AI: sourcing high-value clinical data, turning it into model-ready workflows, and building tasks, rewards, verifiers, benchmarks, and agent environments where models can learn against meaningful and measurable outcomes.
\nYou will work across the full RL loop — from environment and reward design to training, evaluation, and iteration. Projects may span clinical reasoning, longitudinal patient care, diagnostic decision-making, chronic disease management, and biomedical research.
\nThis is a hands-on engineering role. You will build environments, run experiments, train models and agents, analyze failures, and improve the data and feedback signals that determine what models learn.
\nStrong judgment around data is particularly important. You should be able to determine whether a dataset has the signal quality, label fidelity, coverage, diversity, and clinical relevance required to support useful training tasks, rewards, and evaluations.
\nPrior healthcare experience is not required.
\nThis is a full-time in-person role based in San Francisco, CA.
\nWhat you will do:
\nYou might thrive in this role if:
\nCompensation and benefits:
\nWork authorization: Visa sponsorship is available for suitable candidates
\nEqual Opportunity
\nBioStack is an equal opportunity employer. We are committed to building a diverse and inclusive team and do not discriminate on the basis of race, color, religion, gender, gender identity or expression, sexual orientation, national origin, genetics, disability, age, or any other characteristic protected by applicable law. All qualified applicants will receive consideration for employment.
\nYou may be early in your career—just graduating or coming in with a few internships. That is completely fine. We are a young team too.
\nThe real question is how you are wired.
\nYou work toward something for months, finally achieve it, and almost immediately start thinking about what comes next. You want harder problems, more responsibility, and a steeper learning curve. If that sounds like you, you will fit in here. There is no ceiling at BioStack.
\nWe are building our own version of a small group of unconventional, relentlessly driven people who perform exceptionally well when the stakes are high.
\nThe work is technically difficult, operationally messy, and deeply consequential. We need people who want to become world-class, not merely competent.
\nYou should want to become one of the best engineers of your generation. We will give you ambitious problems, real ownership, direct feedback, and the pressure and support to discover abilities you may not know you have.
\nIt will be intense, demanding, and—for the right person—one of the most rewarding periods of their career.
| Location | San Mateo, CA |
| Salary | $200,000–$350,000 Per Year |
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