A
Anthropic

Data Scientist, Developer Productivity

San Francisco, CA | New York City, NYHybridPart Time
StrategyEngineeringAI & DataSalesFinance
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At a glance
LocationSan Francisco, CA | New York City, NY
Work styleHybrid
ContractPart Time
CompensationNot disclosed
SeniorityNot specified
DeadlineNot stated
The opportunity

About the role

About Anthropic 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. About the role You'll partner with Developer Productivity engineering leadership to define what "developer productivity" means in an AI-first org and to set the strategy for how Anthropic measures, understands, and improves it.

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Responsibilities, requirements, fit, evidence and preparation are organized here. The original posting remains available in Source & verification at the end.

Your work

What you'll do

  • Lead ambiguous, high-stakes investigations where the question isn't yet well-formed — from "is Claude making engineers faster?" to "what does 'faster' even mean here?"
  • Treat findings as provisional in a space that changes month to month. Bias toward instrumenting first, collecting evidence broadly, and revising the team's priors as the picture sharpens
  • Partner with Developer Productivity engineering leadership to set the team's measurement and research agenda — what to study, what to build, what to stop
  • Define the metrics framework for developer productivity in an AI-augmented org, and drive its adoption as the basis for tooling and infrastructure investment decisions
  • Design and run experiments on internal tooling and workflow changes; build the causal evidence base for what actually moves productivity
  • Influence engineering, infrastructure, and product leadership with data. Push back when the data doesn't support the prevailing narrative, and say so plainly when it doesn't support yours either
  • Build the analytical foundations (pipelines, dashboards, models) yourself or through partners — staying hands-on and close to the work rather than directing from a distance
What matters

What they're looking for

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  • Experience writing production-quality SQL and Python (or a similar language) to build pipelines, dashboards, and models independently
  • Experience serving as the primary data or analytics voice in a space where the questions weren't yet well-defined, and helping define them
  • A track record of holding conclusions loosely — favoring instrumentation and evidence-gathering over defending a prior position, and revising views in public when the evidence warrants it
  • Experience shaping what an engineering or product team worked on, not only measuring what they shipped — being consulted before a decision was made, not just after
  • Genuine interest in how AI is changing the way software gets built, with some firsthand experience grappling with the harder, less-defined parts of that question
  • Comfort presenting data-backed conclusions to a room of engineers, including when that means saying a built feature isn't moving the needle
  • 8+ years of hands-on data science experience, ideally in infrastructure, performance, or platform contexts
  • Direct experience with developer productivity, developer experience, or internal tooling, at any scale
  • Experience measuring the adoption or impact of AI-assisted workflows, or other tooling where the ground truth was contested
  • A track record of building an experimentation or causal-inference practice in an org that didn't already have one
  • Prior staff-level or tech-lead scope: setting direction for other ICs and owning a domain's data strategy end to end
  • A field relevant to the role as demonstrated through coursework, training, or professional experience
The organization

About Anthropic

Verified company intelligence · refreshed 1 hour ago

Aptiora has not added a narrative company profile without evidence. What follows is derived from the live opportunities currently observed for this organization.

200live roles currently tracked
15observed locations
2work modes observed
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