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Bespoke Labs

RL Environments Engineer

  • Office

Salary

$250,000 - 300,000/ year

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Description

About Bespoke Labs

Bespoke Labs is an applied AI research lab pioneering data and RL environment curation for training and evaluating agents.

Recently, we curated Open Thoughts , one of the best open reasoning datasets used by multiple frontier labs, trained SOTA specialized models such as Bespoke-MiniChart-7B and Bespoke-MiniCheck , and taught agents to do multi-turn tool-calling with reinforcement learning.

Bespoke is uniquely positioned to capture a large market share of data and RL environment curation.

About the Role

This is a delivery role. We want an engineer who has built the machinery that turns environment ideas into hundreds or thousands of validated agentic coding tasks, and who can do it here, fast.

You will not be studying environments in the abstract. You will build the pipelines that mass-produce them, design the complex coding worlds agents train inside, and keep pushing throughput: more environments, higher quality, less manual work per task. We will measure you on the volume and quality of environments you ship, not on papers.

The thing we care about most is whether you have done this before. If you have stood up an environment-generation pipeline, scaled agentic task creation into the hundreds or thousands, and shipped it, we want to talk.

Responsibilities

  • Build environment-generation pipelines. Own the systems that produce RL environments programmatically, including templating, automated grading, verification, and QA, so the team ships environments at scale instead of one at a time.
  • Create complex coding worlds. Build high-fidelity environments around real codebases, with the conventions, dependencies, tooling, and technical debt that real software actually has.
  • Scale agentic task creation to thousands. Take task generation from handfuls to hundreds and thousands of validated agentic coding tasks, with automation doing the heavy lifting.
  • Build tools that raise throughput. Find the bottlenecks in environment production and remove them. Build the internal tooling and infrastructure that makes everyone on the team faster.
  • Own the full task lifecycle. Prompt, environment, grader, running frontier models against the task, failure analysis, and iteration, until each task is rigorous, fair, and hard to game.
  • Defend quality at scale. Catch reward hacking and grader loopholes, and build the verification and standards that hold the bar as volume grows.
  • Direct coding agents heavily. Use frontier coding agents to build and validate environments faster, judging their output and catching the subtle failures.
  • Direct frontier coding agents heavily to build and validate environments, judging their output and catching the quiet failures they produce.

Requirements

  • A record of shipped volume. You have built agentic coding tasks or environments and can show us how many you personally drove and what they cost to produce.
  • Experience scaling that output through automation rather than through more people doing more manual work.
  • Strong software engineering fundamentals and fluency in several languages that holds up in production code.
  • Real experience with production software. Large codebases, build systems, testing, deployment, on-call, and root cause analysis. You know what real engineering work feels like because you have done it.
  • An adversarial mindset. You look at a grader and ask how a model would cheat it, and then you fix that.
  • A clear sense of what frontier coding agents can and cannot do, and where they cut corners.
  • Ownership. You build, debug, and ship without much supervision.
  • You May Be a Good Fit If You Also
  • Have worked on RL training systems, post-training, verifiers, or tool-use harnesses
  • Come from developer tooling, CI/CD, sandboxes, or code execution infrastructure
  • Have built large-scale automated test generation, fuzzing harnesses, or benchmark suites, which is close cousin work even if it was never called an RL environment
  • Have contributed to a public agentic benchmark such as Terminal-Bench
  • Have open-source work that other people depend on

Conditions

Base Salary: $250,000 – $300,000 USD / year

Additional Comp: 25% performance-based bonus + equity

Benefits

  • Health, dental, and vision coverage
  • 401(k)
  • Daily onsite lunch provided
  • Visa sponsorship and relocation support available
  • Direct impact on how the industry trains and evaluates agents
  • We value different backgrounds and paths into this work. If this role excites you but you do not check every box, apply anyway.

Where you’d work

From the office

The office

Relocation offered

Visa sponsored

About the company

Bespoke Labs

  • Industry: AI

Office in Mountain View, United States

Your chances

Worth a look before you spend an evening tailoring a CV for it.

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  • 4 red flags

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Details13 facts · Role, Location, Compensation, Employment, Company
Tech stack
  • CI/CD
Type
Full-time
Equity
Equity offered
Industry
AI
Specialty
Backend
Region
United States
Show 7 more factsShow less

Role

Category
Development
Specialty
Backend
Tech stack
  • CI/CD

Location

Work model
Office
Region
United States
Office
  • Mountain View, United States
Relocation
Offered
Visa sponsorship
Sponsored

Compensation

Salary
$250,000 - 300,000 / year
Pay period
Annual
Equity
Equity offered

Employment

Type
Full-time

Company

Industry
AI

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