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Raydar

Senior Applied AI Engineer

Posted 2 Hours Ago
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In-Office
San Francisco, CA
200K-300K Annually
Senior level
In-Office
San Francisco, CA
200K-300K Annually
Senior level
Design and build production AI agent systems that orchestrate large language models, tools, and deterministic code. Develop evaluation suites, improve model behavior, diagnose production failures, and create feedback systems for training and evaluation. Extend browser and computer-use agents with strong safety, security, and auditability. The role requires end-to-end ownership, robust systems design, and on-site collaboration five days per week.
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About the company

Our client is a fast-growing software company.

The role

Raydar is recruiting for this role on behalf of our client. Design and build the core software that lets large language models carry out multi-step work reliably in production. You will shape how models are prompted and combined with conventional code, measure quality through rigorous testing, and diagnose real-world failures to make systems more robust.

What you'll do

- Develop the core execution framework for AI agents, including orchestration loops, tool usage and context handling.

- Run experiments with models and iterate on agent behavior across realistic, long-running workflows.

- Define where model decisions end and deterministic, type-checked code begins.

- Build evaluation suites on realistic test environments that are dependable enough to gate releases.

- Analyze production failures and trace each one to the right layer, then deliver systematic fixes.

- Extend browser and computer-use agents to systems that lack APIs, with strong safety, security and auditability guarantees.

- Create feedback loops and data systems that bring higher-quality real-task data into evaluation and training.


Requirements

What we're looking for

- Experience with agent frameworks or LLM systems that use tools.

- Strong Python or TypeScript skills and comfort with modern AI tooling.

- Hands-on background measuring or improving model quality, whether through testing, tuning or crafting instructions for models.

- Ability to own systems end to end and debug across the whole stack.

- A systems mindset focused on user outcomes as well as model metrics.

- Satisfaction in tracking down unpredictable production problems and converting what you learn into lasting fixes.

- At least 4 years of relevant experience.

- Ability to work in person five days a week at a startup pace.

Bonus points

- Experience building computer-use or browser-automation agents.

- Familiarity with virtualization and sandboxed execution environments, including scaling them.

- AI research experience with publications at leading conferences.

- Experience delivering systems where correctness must hold through partial failure, such as idempotency and resumability.

- Experience integrating enterprise SaaS APIs.

- Comfort working with sizable, unstructured data sources such as application logs.

- Early-stage engineering experience that included working directly with customers.


Benefits

Compensation and benefits

- Base salary: USD 200,000 to 300,000 per year

- Health insurance

- Unlimited paid time off

Location and work model

- San Francisco, CA, United States

- On-site, five days a week in office

- Full-time

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