Data Scientist, GTM

AnthropicSan Francisco, CA
$275,000 - $370,000Hybrid

About The Position

As part of Anthropic's growing Data Science & Analytics team, this role is instrumental in driving data-informed decisions across the commercial customer lifecycle. The position sits at the intersection of fast-moving sales operations and rigorous statistical analysis, working across multiple segments and products. The Data Scientist will partner with analytics engineers, fellow data scientists, and go-to-market leadership to translate complex commercial data into actionable strategy. This role owns measurement and analysis for new logo acquisition through activation, expansion, and retention for a rapidly scaling, consumption-based AI platform. The individual will contribute to shaping the norms and best practices of a growing data science function.

Requirements

  • Proficiency in Python, SQL, and data visualization tools
  • Expertise in experimental design, causal inference, statistical modeling, and A/B testing, particularly in high-scale technical environments
  • Demonstrated ability to translate complex data into clear, actionable insights for both technical and business audiences
  • Strong written communication and presentation skills
  • Ability to work effectively in fast-moving, ambiguous environments — comfortable creating structure and driving progress where neither yet exists

Nice To Haves

  • 5+ years of experience in data science or analytics roles
  • A strong track record in multi-segment, multi-product B2B sales or commercial analytics, especially with consumption-based revenue models
  • Experience with AI/ML products, large language models, or developer tools in the AI/ML ecosystem
  • Genuine interest in Anthropic's mission of developing safe and beneficial AI

Responsibilities

  • Define key metrics, build measurement frameworks, and maintain core reporting to evaluate GTM success across segments and products
  • Analyze commercial and user data to surface actionable insights, size opportunities, and influence roadmaps and go-to-market strategy
  • Develop hypotheses and apply rigorous causal inference methods — controlled experiments, synthetic controls — to make clear, actionable recommendations
  • Investigate anomalies, conduct root cause analyses, and provide data-driven guidance on priorities and decisions
  • Build statistical models, optimization frameworks, and simulations to support and automate commercial decision-making processes
  • Present analyses and recommendations to both technical and non-technical stakeholders, including GTM leadership
  • Establish foundational data practices and help scale analytics infrastructure to support rapid product and commercial iteration

Benefits

  • competitive compensation
  • benefits
  • optional equity donation matching
  • generous vacation
  • parental leave
  • flexible working hours
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