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Senior Data Engineer

HealthleapSan Francisco Office🇺🇸United StatesPosted Sep 24, 2026

Why This Role Stands Out

As a Senior Data Engineer at HealthLeap, you'll build and operate critical data pipelines that directly impact patient care outcomes and drive significant company growth, all within a hybrid work environment that supports flexibility. This role is ideal for an engineer passionate about transforming complex clinical data into reliable, usable formats for AI and analytics, offering substantial opportunities for skill development and career advancement within a rapidly expanding, mission-driven organization. You'll thrive here if you're eager to contribute to a groundbreaking AI operating system that's revolutionizing healthcare and want to be part of a dynamic team making a real difference.

Quick Overview

Salary
$175k - $275k/yr
Seniority
Mid Senior
Employment type
Full Time
Work mode
Hybrid
Location
San Francisco Office, United States
Posted
10 hours ago
SQLData PipelinePythonREST

Job Description

About Healthleap

Every day, millions of hospitalized patients who need intervention are missed because clinicians simply can't see everything. HealthLeap is building the AI operating system that helps care teams identify these missed patients, enabling them to improve health outcomes and generate millions of dollars. HealthLeap is changing what is possible: closing gaps that traditional workflows and clinician capacity could never.

Over the past year, we've grown contracted revenue more than 13x, expanded rapidly across leading health systems, and now help care teams identify patients across millions of inpatient encounters.

We're ~25 people. >$32M raised. SF-based, hybrid-friendly. And, we're delivering results that are changing lives.

Senior Data Engineer

About the role

HealthLeap runs on data. We’re live at 40+ hospitals and plan to add another 100. You’ll build the core pipelines that move messy clinical data from hospital systems into model inputs, analytics, and the APIs behind what clinicians see.

You’ll make that data usable and reliable. When a feed arrives late, a field changes, or a number looks wrong, you’ll trace it through the system and fix the cause.

What you’ll do

  • Build and operate pipelines from hospital ingestion through transformation and delivery.

  • Produce trusted data for ML pipelines, customer analytics, and user-facing APIs.

  • Define data contracts and checks that catch missing records, schema changes, and incorrect values.

  • Handle backfills, late data, failures, and recovery.

  • Work with integration, ML, and product engineers to get data reliably where it needs to go.

What we’re looking for

  • 5+ years building production data systems, with strong Python and SQL.

  • Experience owning pipelines that depend on messy, changing external data.

  • Strong data modeling and judgment about correctness, monitoring, and recovery.

  • The ability to trace a problem across systems and own the fix through production.

What will make you stand out

  • Experience building data pipelines for ML products.

  • Experience with clinical data, EHRs, HL7, or FHIR.

  • Early-stage experience building and operating core data systems.

This role is NOT for you if

  • You want to own one piece of the data stack. You’ll work across ingestion, model inputs, analytics, and product APIs.

  • You want predictable 9-to-5 hours. We protect deep rest, but a hospital go-live can mean a 60+ hour week.

Interview process

No LeetCode or puzzles. Use the tools you’d use on the job, including AI.

  1. Intro call

  2. Data pipeline design

  3. Practical data exercise

  4. Onsite with the team in San Francisco

We decide the same week as the onsite.

Compensation and benefits

  • $175,000–$275,000 base plus meaningful equity

  • 100% covered healthcare premiums

  • Unlimited PTO with a 20-day minimum

  • 4% 401(k) match

  • Laptop and home office budget

Location

San Francisco, in person. We work together in the office by default, with flexibility to work from home when needed. We judge output, not hours.

If you're passionate about applying frontier AI to real-world impact, join us in building healthcare's future.

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