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You will own the analytical infrastructure for a clinical AI system, including drift detection, safety-weighted quality scoring, and health scoring analysis. You will also collaborate with engineering teams to evaluate RAG performance and clinical skills library accuracy.
What This Role Is
Bailey is a clinical AI system that orchestrates LLMs, manages health safety evaluation, and integrates with clinical data to help people navigate their health. Three data scientists build it today, and a new ML/Platform Engineer is standing up the deployment and monitoring infrastructure underneath it.
This role is the analytical half of that infrastructure. As drift detection, safety-weighted quality scoring, and distributional monitoring come online, someone needs to own the statistics behind them: what counts as drift, how confidence calibration is measured, how outputs compare against ground truth in our FHIR data. You'll also go deeper on health scoring analysis (population percentile and distribution work) and support retrieval/embedding evaluation as the team's RAG work matures.
This is real, scoped analytical ownership, not busywork. You'll be mentored by three senior data scientists, but mentorship here means a safety net and a growth path — not supervision. You're expected to scope your own analysis, exercise judgment, and know when and who to ask, not to wait for a spec.
Four real, currently-queued workstreams — not a generic junior-DS template:
You won't be handed all four on day one — expect to ramp in through one or two with a senior DS pairing closely, then take on more as you build context.
These are the things that would be hard to build on the job at the pace this role demands:
Not requirements — things that would shorten your ramp or deepen your impact:
You'll join a small data science team (Sean, Kenan, Zack) that builds Bailey's AI capabilities: models, integrations, clinical skills, and orchestration. A new ML/Platform Engineer is joining alongside this role to own production infrastructure. You'll have direct senior mentorship on every workstream above, real ownership over your analysis, and visibility into work that's genuinely still being defined — not a finished playbook you're executing against.
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