Jobs · Engineering · California

Senior AI Engineer – Health Intelligence

ŌURA · San Francisco, CA · Yesterday
Engineering$173k–$203k/yrFull-time

About the role

The Health Intelligence team at Oura is seeking a Senior AI Engineer to design, build, and operate the systems that enable personalized health guidance powered by large language models (LLMs).

Responsibilities

  • Design and build LLM-backed product capabilities: Ship user-facing features that use LLMs and other AI models to deliver personalized insights, guidance, and proactive notifications.
  • Implement safe tool-calling, retrieval, and orchestration so that AI components behave deterministically where they must and adaptively where they can.
  • Own evaluation, quality, and safety for AI workflows: Lead the design and implementation of evaluation frameworks and tooling to measure quality, safety, latency, and cost before and after release.
  • Integrate LLMs with personalization and understanding layers: Ground AI behavior in structured user context rather than one-off prompts. Connect AI components to navigation flows and action systems so guidance turns into coherent, multi-step programs and one-tap actions, not isolated tips.
  • Contribute to a multi-LLM and reasoning platform: Prototype and productionize workflows across multiple model providers and configurations, including routing logic and shadow-mode experimentation.
  • Collaborate with infrastructure and science teams on reasoning, planning, and multimodal use cases.
  • Build robust, observable, and cost-aware systems: Design and implement services and workflows that meet reliability and performance expectations.
  • Take ownership of operational health: debug production issues, reduce technical debt, and iterate on architecture as the AI surface area and traffic grow.
  • Partner cross-functionally: work closely with product, data science, research, design, and content to shape problem definitions, constraints, and evaluation plans. Communicate trade-offs clearly and help the team make principled decisions in a fast-moving domain.

Requirements

  • 2+ years of hands-on experience in AI engineering, with a multi-year background in backend engineering, applied ML, or related roles building production systems.
  • Strong proficiency in at least one modern backend or ML language (e.g., Python) and comfort working with cloud-native services to ship and maintain production features.
  • Demonstrated ability to own systems end-to-end: from problem framing and data pipelines through modeling and prompting, all the way to deployment, monitoring, and iteration.
  • A track record of working in product-facing teams, shipping to real users rather than only research prototypes, and caring about impact and iteration speed.
  • Comfort operating in a fast-changing AI/LLM domain with ambiguity, balancing rigor with pragmatism and keeping member value and safety at the center.
  • Excellent communication and collaboration skills, including the ability to explain complex technical trade-offs to non-technical stakeholders and work effectively in cross-functional teams across time zones.

Nice to haves

  • Experience with LLM evaluation and tooling: LLM-as-judge, rubric-based scoring, red-teaming, prompt versioning, or evaluation platforms (internal or external).
  • Familiarity with RAG, knowledge graphs, or semantic retrieval systems (e.g., vector search, hybrid retrieval, ontologies, semantic layers) and how they integrate with LLMs.
  • Background in personalization, recommendation, or ranking systems, including multi-objective optimization and guardrails for safety and fairness.
  • Exposure to digital health, wearables, behavior change, or related domains, and interest in working on long-term outcomes and habit formation rather than short-term engagement spikes.
  • Experience with developer tooling, experimentation frameworks, or analytics/observability products, especially internal tools used by multiple teams.
  • Prior work in distributed teams across countries and time zones, and comfort working asynchronously when needed.
  • Experience mentoring other engineers or scientists, or informally shaping best practices around AI/ML and evaluation in your team.

Benefits

At Oura, we care about you and your well-being. Everyone here at Oura has a ring of their own and we are continually looking to improve employee health.

  • Competitive salary and equity packages
  • Health, dental, vision insurance, and mental health resources
  • An Oura Ring of your own plus employee discounts for friends & family
  • 20 days of paid time off plus 13 paid holidays plus 8 days of flexible wellness time off
  • Paid sick leave and parental leave

Oura takes a market-based approach to pay, which may vary depending on your location. US locations are categorized into tiers based on a cost of labor index for that geographic area. While most offers will be closer to the starting range, successful candidates' pay will be determined based on job-related skills, experience, qualifications, work location, internal peer equity, and market conditions.

These ranges may be modified in the future.

Region 1: $172,550- $203,000

Region 2: $158,950- $187,000

Region 3: $147,900- $174,000

A recruiter can determine your zones/tiers based on your US location.

We are not considering candidates residing in the following states:

  • Alaska (AK)
  • Delaware (DE)
  • Iowa (IA)
  • Mississippi (MS)
  • Missouri (MO)
  • Nebraska (NE)
  • South Dakota (SD)
  • Vermont (VT)
  • West Virginia (WV)
  • Wisconsin (WI)

Oura is proud to be an equal opportunity workplace. We celebrate diversity and are committed to creating an inclusive environment for all employees.

We will not tolerate discrimination or harassment based on any of these characteristics.

We will work to ensure individuals with disabilities are provided reasonable accommodation to participate in the interview process, to perform essential job functions, and to receive other benefits and privileges of employment.

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