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Staff Machine Learning Engineer

Bayesian Health

Remote · USFull-time$135–275K/yrPosted 1y agoStill listed 2w ago

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At a glance

Compensation
$135–275K/yr
Location
Remote · US
Schedule
Full-time
Work Authorization
Not specified

Olive lists jobs from US employers, including remote roles you can work from the United States.

Requirements

Credentials this posting asks for.

Master's degree

Job overview

Bayesian Health is hiring a Staff Machine Learning Engineer. Bayesian Health seeks a Staff Machine Learning Engineer to own end‑to‑end model effectiveness in a live clinical AI product, combining data‑science, applied‑science and MLE responsibilities while working with real‑time healthcare data and AWS services.

Key focus areas include Develop and tune innovative new ML models and labeler systems based on clinical use cases and state‑of‑the‑art methods, Productionize models using production‑grade Python, and Deploy strategies to improve production ML systems by writing, debugging, and deploying production‑grade Python code.

Successful candidates bring Ph.D. In Relevant Field Or Master's Degree, 3+ Years Relevant Experience With Ph.D., and 5+ Years Experience Shipping ML Based Software Products With Master's Degree. Important skills include ML Model Prototyping, ML Model Tuning, Clinical Use Cases, State-Of-The-Art ML Methods, Production-Grade Python, and SQL. Preferred (not required): Building Solutions Within Healthcare, Working With Messy Health Data, Working With Enterprise Customers, and Interpreting Peer-Reviewed Methods.

Skills & qualifications

RequiredNice to have

Skills

ML Model PrototypingML Model TuningClinical Use CasesState-of-the-Art ML MethodsProduction-Grade PythonSQLMLOpsSageMakerMLFlowBuilding Solutions Within HealthcareWorking With Messy Health DataWorking With Enterprise CustomersInterpreting Peer-Reviewed MethodsLeveraging Peer-Reviewed Tools

Qualifications

Ph.D. In Relevant Field or Master's Degree3+ Years Relevant Experience With Ph.D.5+ Years Experience Shipping ML Based Software Products With Master's DegreeExperience Owning ML Models From Prototyping to ProductionExperience Writing Production-Grade Python and SQL CodeExperience Using MLOps ToolsExperience Going 0-1 and Shipping High Impact AI/ML Products

Full job description

Staff Machine Learning Engineer In Brief

  • We’re an early-stage startup on a mission to make healthcare proactive by empowering physicians, nurses, and care team members with real-time data to save lives.

  • Part Data Scientist (building models), part Applied Scientist (productionizing models), and part MLE (deploying, maintaining), also known as “Full Stack Data Scientist” – someone who wants to own the end-to-end effectiveness of their real-time models in a live, clinical AI product.

Who We Are Bayesian Health’s mission is to improve patient outcomes by empowering clinicians with the insights they need to make the right decision for the right patient at the point-of-care. We’re a diverse team of clinicians, engineers, machine learning experts, product designers, and performance improvement leaders committed to enabling smarter, patient-specific care delivery through unlocking the power of data.

We’re funded by top tier tech and biotech investors: Andreessen Horowitz, American Medical Association’s venture arm, Catalio Partners, and LifeForce Capital. Our company has won many awards; most recent recognitions include: Forbes AI Top 50, World Economic Forum Tech Pioneer, Time Best Inventions, BioTech AI Company of the Year.

Read more about our recent publication in Nature Medicine that associates our products with lives saved.

What You’ll Do As a Staff Machine Learning Engineer, you are not satisfied with training and tuning ML models that predict clinical conditions in patients; you also want to own the effectiveness of your model in the real world. In practice, that means you aren’t afraid to get your hands dirty by writing data mapping code, debugging a specific patient case by following patient data as it moves through our AWS services, or improving the timeliness of your model’s predictions by reading and writing production-grade Python and SQL code.

Responsibilities

  • Model Prototyping: Develop and tune innovative, new ML models and labeler systems based on deep understanding of clinical use cases and state-of-the-art ML methods.

  • Productionizing: The same models that you develop with production-grade python.

  • Deploying: Identify strategies for improving our production ML-based systems, and write, debug, and deploying production-grade Python code to implement those strategies.

  • MLOps: Build infrastructure that enables ML model development and deployment in production systems.

Minimum qualifications

  • Ph.D. in a relevant field plus 3+ years relevant experience, or a relevant Master’s degree and 5+ years experience shipping ML based software products.

  • Experience owning your ML models from prototyping to production.

  • Experience writing production-grade Python and SQL code to implement and evaluate ML models in production systems.

  • Experience using MLOps tools such as SageMaker and MLFlow.

Preferred qualifications

  • Experience going 0-1 and shipping high impact AI/ML products.

  • Experience building solutions within healthcare and/or familiarity working with messy health data.

  • Experience working with enterprise customers, and the agility and responsiveness they require.

  • Comfortable interpreting / leveraging state-of-the-art peer-reviewed methods or tools in designing your approach.

  • Excitement for Bayesian’s mission and being a bar raiser so we can accelerate the pace at which we create value.

Bayesian Health provides equal employment opportunities to all employees and applicants for employment and prohibits discrimination and harassment of any type without regard to race, color, religion, age, sex, national origin, disability status, genetics, protected veteran status, sexual orientation, gender identity or expression, or any other characteristic protected by federal, state or local laws.

This policy applies to all terms and conditions of employment, including recruiting, hiring, placement, promotion, termination, layoff, recall, transfer, leaves of absence, compensation and training.

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