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Synapse Health

Director of Data Science and Analytics

RemoteNot specified. Estimate: United States · 74% confidence
Published
Role
Data Science
Experience
Lead
Employment
Full-time
Salary not disclosed
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The listing doesn't say where it hires from. It may hire in United States (74% confidence). This is an estimate, not an eligibility rule; verify before applying.Signals: employment terms.

No BS summary

Director-level data science leader with 8+ years in data science and 3+ years managing data scientists. Must have healthcare startup experience, claims/healthcare data expertise, predictive ML, Python, SQL, GitHub, and end-to-end ML production experience. Owns hands-on modeling plus team leadership across operations, RCM, finance, and agentic AI.

Core skills

PythonSQLMachine Learning

Required skills

GitHub

Optional skills

Reinforcement LearningQueueing TheoryLittle's LawNetwork Flow OptimizationDiscrete Event SimulationCausal InferenceDifference-in-DifferencesRegression Discontinuity

What you'll do

  • Anchor the roadmap to the P&L before writing a single model.
  • Quantify the actual cost of a bad vendor match, a mis-routed order, and network bottlenecks against the capitated rate.
  • Break the roadmap into quarters, sequenced by leverage, not by ease.
  • Turn vendor matching, order routing, and supply chain optimization into a quarter-by-quarter plan across the team.
  • Build the measurement infrastructure alongside the models, not after.
  • Stand up the pre/post and counterfactual framework, including holdouts and experiment design, as part of each build.
  • Ship the first real win in the first 90 days with a measured before/after result.
  • Build the operating rhythm, including sprint cadence, prioritization process, and delivery tracking.
  • Operate as a technical IC on design work.
  • Personally write and review technical design docs.
  • Document decisions clearly and make documentation visible across the team.
  • Build an early-stage startup culture on the team.
  • Set the tone for scrappiness, ownership, speed, proactive work, and iteration in ambiguity.
  • Lead and grow the team of data scientists.
  • Hire, coach, and hold the team to a real delivery bar while staying hands-on to build models.
  • Own the data science roadmap across Operations, Revenue Cycle Management, and Finance initiatives like anomaly detection.
  • Ship models, get them adopted, and iterate based on post-launch data.
  • Manage up to the SVP and exec team in terms of dollars saved, orders recovered, and waste reduced.
  • Partner with product on the roadmap.
  • Ensure the data science roadmap and product roadmap are aligned.
  • Push into phase two: agentic AI.
  • Evolve the system from recommending actions to automating them directly once vendor matching and routing are trusted and proven.
  • Architect confidence thresholds and decision logic from day one.
  • Partner with Engineering on the data foundation.
  • Work with the Director of Engineering on Snowflake and the broader data architecture.

What they require

  • Master's degree required in a quantitative field such as Computer Science, Statistics, Data Science, Operations Research, or related.
  • 8+ years in data science.
  • 3+ years directly managing a team of data scientists, including senior/staff-level resources.
  • Prior experience at an early-stage healthcare startup.
  • Deep, hands-on expertise in claims data and other healthcare data, including health outcome measurements.
  • Strong technical foundation in standard predictive ML, including classification, regression, and forecasting.
  • Strong hands-on proficiency in Python and SQL, able to write, debug, and optimize production-quality code, not just prototype in a notebook.
  • Understands the full software development lifecycle.
  • Works fluently with GitHub, including version control, branching strategies, pull requests, and code review, as a standard part of shipping models into production.
  • Track record shipping ML products end to end, from experimentation through production, in close partnership with data engineering.
  • Able to write technical design docs, review the team's work at a high standard, and organize the team's structure around the roadmap.
  • Experience managing senior technical resources, not just junior ICs.
  • Demonstrate effective verbal and written communication skills, including presenting to executive stakeholders.
  • Demonstrate strong analytical and organizational skills, managing multiple workstreams and quarterly priorities broken into bi-weekly delivery cadences.
  • Able to personally write, review, and document technical design docs and make that documentation visible and accessible across the team.
  • Comfortable operating in a high-pressure, ambiguous environment where priorities shift and requirements aren't always fully defined.
  • Preferred: Hands-on experience in offline and online reinforcement learning for sequencing decisions that improve in-flow/out-flow over time.
  • Preferred: Operations research methods such as queueing theory / Little's Law, network flow optimization, and discrete event simulation applied to supply chain or logistics.
  • Preferred: Rigorous causal inference skills, estimating heterogeneous treatment effects and applying quasi-experimental designs like difference-in-differences and regression discontinuity.
  • Preferred: Deep expertise in health economics, able to rigorously evaluate ROI and connect data science impact directly to business value.
  • Preferred: Experience building agentic AI tools, with a point of view on how emerging AI capabilities could unlock future use cases beyond what's scoped today.
  • Kindness, collaboration, and creativity are considered essential for every team member.

Benefits

  • Professional growth opportunities with compelling career paths.
  • Healthy work-life balance supported by flexible paid time off (PTO).
  • Comprehensive benefits package, including medical, dental, vision, STD & LTD insurance for full-time team members.
  • 401(k) savings plan with employer matching contributions.

At Synapse Health, we're streamlining the durable medical equipment (DME) process. We manage intake, documentation, routing, claims, billing, and patient support. Our model reshapes how DME is delivered and experienced.

HealthcareMid-size

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