Research Engineer, Interpretability

Anthropic · San Francisco, CA · AI Research & Engineering · listed November 7, 2025

The shape of it

Seniority
Senior
Experience asked
5–10 years
Where
Hybrid
Stated pay
$315,000 – $560,000 USD
Requirements listed
8
Length
1,321 words

In the posting’s own words

When you see what modern language models are capable of, do you wonder, "How do these things work? How can we trust them?"

What it asks for · 8

  • Have 5-10+ years of experience building software
  • Are highly proficient in at least one programming language (e.g., Python, Rust, Go, Java) and productive with Python
  • Are extremely curious about unfamiliar domains; can quickly learn and put that knowledge to work, e.g. diving into new layers of the stack to find bottlenecks
  • Have a strong ability to prioritize the most impactful work and are comfortable operating with ambiguity and questioning assumptions
  • Prefer fast-moving collaborative projects to extensive solo efforts
  • Are curious about interpretability research and its role in AI safety (though no research experience is required!)
  • Care about the societal impacts and ethics of your work
  • Are comfortable working closely with researchers, translating research needs into engineering solutions.

Also a plus

  • Optimizing the performance of large-scale distributed systems
  • Language modeling fundamentals with transformers
  • High Performance LLM optimization: memory management, compute efficiency, parallelism strategies, inference throughput optimization
  • Working hands-on in a mainstream ML stack - PyTorch/CUDA on GPUs or JAX/XLA on TPUs
  • Collaborating closely with researchers and building tooling to support research teams; or directly performed research with complex engineering challenges

What the job covers

  • Build and maintain the specialized inference and training infrastructure that powers interpretability research - including instrumented forward/backward passes, activation extraction, and steering vector application
  • Resolve scaling and efficiency bottlenecks through profiling, optimization, and close collaboration with peer infrastructure teams
  • Design tools, abstractions, and platforms that enable researchers to rapidly experiment without hitting engineering barriers
  • Help bring interpretability research into production safety audits - with real deadlines and high reliability expectations
  • Work across the stack - from model internals and accelerator-level optimization to user-facing research tooling

Tools and skills named

Models & research
  • Inference5×
  • LLM3×
  • GPU2×
  • Machine learning2×
  • CUDA
  • JAX
  • PyTorch
Languages
  • Python2×
  • Go
  • Java
  • Rust
Cloud & infra
  • Distributed systems

Words the posting leans on

  • research13×
  • model10×
  • interpretability8×
  • engineering5×
  • inference5×
  • optimization5×
  • safety5×
  • activations4×
  • bottlenecks4×
  • building4×
  • infrastructure4×
  • internal4×
  • language4×
  • researchers4×
  • stack4×
  • training4×

Counted from the posting after the mission statement and the legal notices are set aside. The ones near the top are the ones a screener is looking for.

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How this page was made

An automated read of a public job posting, fetched August 25, 2026 and last changed by Anthropic on August 21, 2026. Every list above is pulled from the posting’s own sentences — nothing rewritten, nothing added, no judgment about the role or the company. Counts and seniority are read off the text by rule, so they can be wrong where the posting is unusual. The original is the only thing that binds. Openings close without warning; check the source before spending an evening on it.