Staff Machine Learning Engineer, Virtual Collaborator

Anthropics Technology LtdSan Francisco, CA
50d$340,000 - $560,000Hybrid

About The Position

Anthropic's mission is to create reliable, interpretable, and steerable AI systems. We want AI to be safe and beneficial for our users and for society as a whole. Our team is a quickly growing group of committed researchers, engineers, policy experts, and business leaders working together to build beneficial AI systems. We are looking for a Machine Learning Engineer to help us train Claude specifically for virtual collaborator workflows. While Claude excels at general tasks, a lot of knowledge work requires targeted training on real organizational data and workflows. Your job will be to design and implement reinforcement learning environments that transform Claude into the best virtual collaborator, training on everything from navigating internal knowledge to creating financial models.

Requirements

  • Are a very experienced Python programmer who can quickly produce reliable, high quality code that your teammates love using
  • Have strong machine learning experience
  • Thrive at the intersection of research and product, with a pragmatic approach to solving real-world problems
  • Are comfortable with ambiguity and can balance research rigor with shipping deadlines
  • Enjoy collaborating across multiple teams (data operations, model training, product)
  • Can context-switch between research problems and product engineering tasks
  • Care about making AI genuinely helpful for everyday enterprise workflows

Nice To Haves

  • Building human-in-the-loop training systems or crowdsourcing platforms
  • Working with enterprise tools and APIs (Google Workspace, Microsoft Office, Slack, etc.)
  • Developing evaluation frameworks for open-ended tasks
  • Domain expertise in finance, legal, or healthcare workflows
  • Creating scalable data pipelines with quality control mechanisms
  • Reward modeling and preventing reward hacking in RL systems
  • Translating product requirements into technical training objectives

Responsibilities

  • Designing and implementing reinforcement learning pipelines specifically targeted at virtual collaborator use cases (productivity, organizational navigation, vertical domains)
  • Building and scaling our data creation platform for generating high-quality, open-ended tasks with domain experts and crowdworkers
  • Integrating real organizational data to create authentic training environments
  • Developing robust rubric-based evaluation systems that maintain quality while avoiding reward hacking
  • Training Claude on advanced document manipulation, including understanding, enhancing, and co-creating
  • Partnering directly with product teams to ensure training aligns with shipped features

Benefits

  • equity
  • benefits
  • incentive compensation
  • optional equity donation matching
  • generous vacation and parental leave
  • flexible working hours
  • a lovely office space in which to collaborate with colleagues
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