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Full-Time

Research Engineer, Reward Models Platform at Anthropic

Company Anthropic
Location San Francisco, CA | Seattle, WA | New York City, NY
Salary Competitive salary
Posted Posted 1 days ago

Job Description

Opening. This role is for someone who wants to stay close to the science while having outsized leverage. You'll partner directly with researchers on the Rewards team and across the broader Fine-Tuning organization to understand what slows them down: running human data experiments before adding to preference models, debugging reward hacks, comparing rubric methodologies across domains. Then you'll build the systems that make those workflows 10x faster.

What you'll do

You will deeply understand the research workflows of our Finetuning teams and automate the high-friction parts – turning days of manual experimentation into hours. You’ll build the tools and infrastructure that enable researchers across the organization to develop, evaluate, and optimize reward signals for training our models. Your scalable platforms will make it easy to experiment with different reward methodologies, assess their robustness, and iterate rapidly on improvements to help the rest of Anthropic train our reward models.

What you need

  • Design and build infrastructure that enables researchers to rapidly iterate on reward signals, including tools for rubric development, human feedback data analysis, and reward robustness evaluation
  • Develop systems for automated quality assessment of rewards, including detection of reward hacks and other pathologies
  • Create tooling that allows researchers to easily compare different reward methodologies (preference models, rubrics, programmatic rewards) and understand their effects
  • Build pipelines and workflows that reduce toil in reward development, from dataset preparation to evaluation to deployment
  • Implement monitoring and observability systems to track reward signal quality and surface issues during training runs
  • Collaborate with researchers to translate science requirements into platform capabilities
  • Optimize existing systems for performance, reliability, and ease of use
  • Contribute to the development of best practices and documentation for reward development workflows

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