
Posted 1 month ago
Senior Machine Learning Engineer
AI Summary
Senior Machine Learning Engineer owns clinical prediction models end-to-end, designing, training, evaluating, and deploying models on physiological time series and EHR data to prevent avoidable hospitalizations.
About this role
About Circadia Health
Circadia Health is a growth-stage healthcare AI company on a mission to prevent avoidable hospitalizations and transform senior-care operations. Our Circadia Intelligence Platform combines:
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Contactless sensing that monitors respiration and motion with medical-grade accuracy
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Native predictive models that detect 85% of preventable adverse events several days in advance
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Enterprise integrations that operationalize predictions directly inside EHR, care-coordination, billing, and compliance workflows
Today, our technology touches 40,000+ post-acute patients daily across skilled-nursing, home-health, and home-care networks. We are backed by leading healthcare and AI investors and headquartered in El Segundo, CA.
Why this role exists
At most companies the ML engineer supports the product. Here the model is the product, and its accuracy is the ceiling on what the whole platform can deliver.
What we sell is the judgment layer on top of a corpus most teams will never get access to: 70,000 years of continuous vital signs joined to clinical records from more than 400,000 unique patients. You will own the models built on it end to end: what they predict, how they are evaluated, where the threshold sits, and when they ship. Ground truth is retrospective chart review, so your labels are imperfect and you will need to know exactly how.
What you'll own
Model development. Design, train, and evaluate clinical prediction models, with feature engineering across physiological time series and structured EHR context.
Labels and ground truth. Define what you are actually predicting with clinical teams, build adjudication workflows, and understand the noise in your targets.
Evaluation and testing infrastructure. Build the eval harnesses, backtesting, and regression suites that let us ship new model versions and new configurations with confidence, including how flagging behaves and whether explanations hold up.
Clinical evaluation. Sensitivity, specificity, lead time, and alert burden as the care team experiences them. Threshold selection is a clinical decision as much as a statistical one.
Robustness. Find where performance varies across facilities, settings, and demographics, and quantify it.
Production and evidence. Ship with ML Ops support on serving and deployment, monitor real-world performance, and contribute to validation studies and regulatory submissions.
Required Qualifications
Preferred
Skills
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