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Applied AI Engineer

About the Role You will own the agentic infrastructure at a seed-stage AI startup building the foundational layer for AI-native service operations. This means designing and shipping the systems that let agents execute reliably in...

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Clera (ashby) San Francisco, California, United States Source published Sep 16, 2026 Verified 2 hours ago
✓ 80% verification score · Source: Clera (ashby) · Always confirm final requirements on the original source.
Complete source information imported The available role or programme description, requirements, benefits and source facts were imported from the public official endpoint and formatted for reading.
EmploymentFull Time
CountryUnited States
DepartmentEngineering

Overview

About the Role You will own the agentic infrastructure at a seed-stage AI startup building the foundational layer for AI-native service operations. This means designing and shipping the systems that let agents execute reliably in production, retain months of client context, and know when to hand off to a human. This is a foundational engineering role at a very early team, with outsized scope and impact from day one. What You'll Do Build and maintain core infrastructure that enables agents to execute tasks reliably across dozens of iterations. Design and implement memory systems that retain months of client context from messy, real-world operational data. Develop eval harnesses that teams actually trust to make production shipping decisions. Own the full loop: build it, measure it, break it, fix it, and make it learn. Ship agent systems for real customers and iterate directly based on pro

Full job description

Full Job Description

About the Role

You will own the agentic infrastructure at a seed-stage AI startup building the foundational layer for AI-native service operations. This means designing and shipping the systems that let agents execute reliably in production, retain months of client context, and know when to hand off to a human. This is a foundational engineering role at a very early team, with outsized scope and impact from day one.

What You'll Do

  • Build and maintain core infrastructure that enables agents to execute tasks reliably across dozens of iterations.

  • Design and implement memory systems that retain months of client context from messy, real-world operational data.

  • Develop eval harnesses that teams actually trust to make production shipping decisions.

  • Own the full loop: build it, measure it, break it, fix it, and make it learn.

  • Ship agent systems for real customers and iterate directly based on production feedback.

  • Contribute across infrastructure, orchestration, customer collaboration, and early hiring as the team grows.

What We're Looking For

  • 3+ years shipping LLM agents that ran unattended in production for real users, with a clear understanding that the model is the easy part.

  • Hands-on experience building eval harnesses that were actually used to make production deployment decisions.

  • Experience with retrieval and memory systems that work on real, messy operational data, not demo RAG pipelines.

  • Strong Python proficiency for building production systems end to end.

  • Experience with agent orchestration, workflow management, or reliability patterns such as failure recovery and retry logic.

  • Experience building agent tooling, frameworks, or libraries is a strong plus.

  • Experience with human-in-the-loop or approval workflow systems is a plus.

  • Track record of intensity and execution: you force things into existence; open-source contributions or a founded technical project are a bonus.

Compensation & Benefits

  • Base salary: $150,000 to $250,000 USD annually.

  • Meaningful early equity.

  • Relocation assistance provided.

  • Visa sponsorship available.

Location

On-site in San Francisco, CA, United States.

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Verification notes

Discovered directly from the employer’s public Ashby Job Postings API. The complete public role content and compensation metadata were normalized into safe candidate-facing sections.

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