San Francisco
5 months ago

Job Overview

Job Type
FullTime
Pay
$180K – $220K • Offers Equity • $100K – $300K Bonus

Job description

Salary:
USD 180,000 - 220,000 per year
Location:
San Francisco, United States
Work arrangement:
On-site

Role Summary

Massive Opportunity

We were one of the fastest-growing YC companies in our batch, and we believe we can become one of the fastest-growing YC companies of all time.

Founding Impact

You will own and architect core infrastructure systems that power our platform from the ground up.

Equity & Growth

Competitive salary and meaningful equity. As we scale, you’ll have the opportunity to shape the engineering organization and lead major technical initiatives.

Strong Team

Our founding team has experience from Citadel Securities, Meta, Google, Silver Lake, and Morgan Stanley — work alongside world-class engineers and researchers.

As a SWE (Environments), you will design the simulations, data, and evaluations that directly influence how frontier models learn. You'll work hands-on with research teams at top AI labs, experimenting with environment design, piloting novel data creation strategies, diagnosing model failure modes, and developing the metrics that determine whether a model is actually improving. You'll go from hypothesis to live experiment quickly, and your output will feed directly into model training runs at scale.

Day to day, you will design environments, tasks, and data that expose meaningful failure modes across domains like finance, code, and enterprise workflows. You will build and refine reward signals for various RL pipelines. You will develop quantitative frameworks for measuring dataset quality, diversity, and downstream impact on alignment and capability. You will partner with lab research teams to translate their training objectives into concrete data and evaluation specifications.

Responsibilities

  • Construct simulated worlds and explore data shapes that expose meaningful model failure modes across domains like finance, code, and enterprise workflows
  • Build and refine evaluation rubrics and reward signals for RLHF and RLVR training pipelines
  • Analyze agent-produced trajectories and run experiments to improve different model capabilities
  • Develop quantitative frameworks for measuring dataset quality, diversity, and downstream impact on model alignment and capability
  • Create and manage both real world & synthetic data pipelines
  • Partner with lab research teams to translate their training objectives into concrete data and evaluation specifications
  • Partner with in-house researchers to run post-training experiments and scale training infrastructure

Requirements

  • Ability to design lightweight experiments, move fast, and extract actionable insights from messy results
  • Experience with using Docker, or similar containerization tools, to design and monitor systems at scale
  • Strong familiarity with common reinforcement learning algorithms and methods, especially with respect to post-training LLMs

PREFERRED QUALIFICATIONS

  • Major plus if they've worked for/interned for any RL environment companies in the past or any AI safety or benchmarking orgs like METR, Artificial Analysis, etc.
  • Former founders and early engineers at early stage startups are a plus. We want people who can demonstrate they work hard, learn fast, and care deeply about getting the details right.

About the Company

ABOUT AFTERQUERY

AfterQuery https: //www.afterquery.com/ is an applied research lab curating data solutions for foundation model development.

We serve every frontier AI lab with the mission of delivering the best data to power the best models. In doing so, we can make expertise that once took a lifetime to build available to anyone who needs it. Our customers are the ones building the foundation models themselves and our work sits directly in the loop of how those systems improve.

This is a rare opportunity to join a company at a defining moment in AI. Since raising our $30M Series A at a $300M valuation, AfterQuery has grown well over a $100M revenue run rate.

We're based in San Francisco and backed by leading investors including Altos Ventures, BoxGroup, and Y Combinator and angels from Google DeepMind, OpenAI, Anthropic, Meta Superintelligence Labs, and Microsoft AI.

Role:
Software Engineer - RL Environments
Job Type:
FullTime

Company profile

AfterQuery

afterquery.com

AfterQuery is an applied research lab that creates training data for frontier AI models. It captures how experts reason and turns real professional work into high-quality data for foundation model developers, and it serves frontier AI research labs, aiming to make expertise that once took a lifetime to build available to those models. AfterQuery raised a $30M Series A at a $300M valuation.

Headquarters
San Francisco, California, United States
Funding Stage
Series A

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