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Lead AI Engineer
Job in
San Francisco, San Francisco County, California, 94199, USA
Listed on 2026-02-25
Listing for:
Woebot Health
Full Time
position Listed on 2026-02-25
Job specializations:
-
IT/Tech
AI Engineer, Machine Learning/ ML Engineer
Job Description & How to Apply Below
We’re a mission-driven startup reinventing the way people find peace and inspiration through dazzling digital experiences. Our team blends engineering, design, and product minds with a shared passion for building human-centered technology. Using the latest advances in language models, real-time interactions, and conversational design, we’re creating a next-generation digital companion that helps people feel seen, supported, and empowered - wherever they are, whenever they need it.
With backing from top-tier investors and a bold vision for the future, we’re moving fast, learning constantly, and designing for real-world impact at scale.
We believe the future of generative AI lies not in novelty, but in precision, nuance, and emotional resonance. If you’re driven by solving hard problems in applied AI and want to shape systems that genuinely serve people, we’d love to meet you.
Why Join Us?
Our company was founded by Alison Darcy, a clinical research psychologist and digital health entrepreneur. Among our earliest and most strategic backers is AI pioneer Andrew Ng, founder of AI Fund and deeplearning.ai. Backed by top-tier investors and powered by a hands-on team of passionate creators, we’re turning bold ideas into transformative digital care. This role will report to and collaborate closely with our founder, shaping the architecture and capabilities of our AI companion from the ground up.
Joining our small but mighty core team means making an outsized and immediate impact on people’s wellness.
The Role
Our LeadAI Engineer will help architect and evolve the “cognitive engine” of our platform. This role sits at the intersection of model tuning, inference optimization, and intelligent orchestration, focused on building adaptive systems that can shift modes fluidly depending on user needs.
You’ll partner closely with our psychology, product, and infrastructure teams to:
• Lead fine-tuning of foundational models using efficient training techniques and custom datasets
• Design and implement model orchestration logic that determines when to retrieve, route, generate, or escalate across different conversational contexts
• Build and iterate on eval frameworks for long-form, multi-turn interactions - prioritizing emotional coherence and user outcomes over token accuracy
• Stay on top of rapid developments in LLMs, fine-tuning frameworks, and inference efficiency, translating that knowledge into action
• Champion best practices for scaling training workflows, experimenting safely, and continuously learning from real-world feedback
While the company currently operates in a remote environment, we aspire to build a hybrid presence in the Bay Area, which may require relocation down the line. While we may prioritize talent based in the Bay Area, we are open to hiring top talent anywhere in the US.
What You’ll Do
As a LeadAI Engineer, you will be responsible for architecting, optimizing, and evolving the “cognitive engine” of our AI companion. Your work will combine deep model training expertise with real-world experimentation, striking a balance between precision, nuance, and adaptability. You’ll collaborate across AI, product, and design to translate emotional and behavioral intent into reliable, scalable machine intelligence, and help define our technical roadmap in collaboration with the founder & engineering team.
You will:
• Prompt Engineering & Optimization
- Design, iterate, and evaluate prompt strategies for complex multi-turn interactions using frameworks like DSPy
- Build prompt libraries and A/B test variants to optimize for safety, clarity, and on-brand responsiveness
- Leverage prompt engineering as a short-term strategy where fine-tuning is not yet appropriate, with a clear view on trade-off
• Agentic Reasoning & Orchestration
- Evaluate and integrate modular orchestration strategies (e.g., Lang Graph, Llama Index, Letta, Pydantic
AI), forming a perspective on their relevance and scalability
- Design systems that can switch between reflection, coaching, or directive states based on context, using either routing logic or learned behavior
- Collaborate with the product team to define how tools,…
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