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Software Engineer, Tokens and Prompt Structures

Anthropic·San Francisco, CA | New York City, NYsenior

In short

  • →Engineer de infraestructura de codificación para datos textuales y multimodales en Claude.
  • →Trabajas con investigadores y equipos técnicos para mantener APIs robustas y escalables en todo el código.
  • →Impacto directo en cómo Claude entiende y procesa información, desde investigación hasta producción.

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What they ask for

  • ✓5+ años de experiencia en ingeniería de software, con enfoque en bibliotecas o APIs para desarrolladores
  • ✓Conocimiento básico de terminología de ML y arquitectura de modelos de lenguaje
  • ✓Experiencia en refactorizaciones complejas en código grande
  • ✓Habilidades sólidas de comunicación para colaborar con investigadores e ingenieros
  • ✓Enfoque orientado a resultados con flexibilidad y disposición para asumir responsabilidades adicionales
  • ✓Compromiso con los impactos sociales de la tecnología

Don't tick every box? That's normal — your free dossier shows your gaps and how to cover them in the interview.

PythonRustMLLLMtokenizersmultimodal datapretrainingfinetuningAPIperformance optimization

Who should you write to at Anthropic?

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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: The Encodings Infra team maintains the libraries that engineers and researchers across Anthropic use to encode text and multimodal data into a form that Claude can consume. It also determines Claude’s prompt shape: how a user’s turn is represented to the model, how Claude calls tools and receives tool results, and so on. As a Software Engineer on this team, you'll own the design and maintenance of these libraries—keeping their APIs intuitive, their performance sharp, and their abstractions solid enough that most of the org never has to think about encodings or prompt structures at all. You’ll have the satisfaction of knowing that your work enabled Claude to learn new ways of understanding the world. This role is unusually broad: your work will touch systems across the codebase, from pretraining to finetuning to the API, and you'll collaborate closely with both researchers and engineers to make sure new encoding ideas can move quickly from experiment to production. Responsibilities: • Maintain and improve the encoding libraries used by engineers and researchers across Anthropic • Run experiments to determine the optimal way to feed structured data into Claude without confusing it • Design data structures and abstractions that shield most of the organization from the details of how encoded data works while enabling “power users” • Adapt the encoding libraries to support new research directions as they emerge, and make sure that we can ship these research ideas to production • Optimize encoding performance across the systems that depend on these libraries You may be a good fit if you: • Have 5+ years of software engineering experience, with meaningful time spent maintaining libraries, SDKs, or developer-facing APIs • Have familiarity with ML terminology and LLM architecture — you don't need to be an ML expert, but enough understanding to work effectively alongside researchers and understand the results of experiments • Have experience carrying out complex refactors in large codebases • Have strong communication skills and enjoy working closely with researchers and engineers to understand what they need • Are results-oriented, with a bias towards flexibility and impact • Pick up slack, even if it goes outside your job description • Care about the societal impacts of your work Strong candidates may also have experience with: • Tokenizers or other text/data encoding systems • Maintaining a widely-used library over a long period of time • Performance optimization • Python and/or Rust • Reinforcement learning or model training infrastructure Representative projects: • Working with a research team to ship a new multimodal data type (audio, video, etc) to production • Redesigning a core abstraction so that we can change how data is encoded into Claude without breaking downstream teams The annual compensation range for this role is listed below. For sales roles, the range provided is the role’s On Target Earnings ("OTE") ran

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