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Member of Technical Staff - Inference Research

Backend Developer • Vor Ort • Vollzeit • 📍 New York

You'll do hands-on inference research at Modal, working on high-impact bets that move cost per token and tail latency on the workloads customers actually run.

Responsibilities

  • Own end-to-end inference research bets: speculative decoding, disaggregated prefill/decode, quantization (FP8, INT4), KV-cache and memory management, autoscaling
  • Train custom speculators against real production traffic
  • Work directly with customers alongside Forward Deployed Engineers to deploy and tune models
  • Carry and expand collaborations with outside research labs (e.g. ZLab, SGLang)
  • Work with engineering to turn frontier serving techniques into products
  • Help shape the research agenda

Requirements

  • A research-leaning or systems background in LLM inference, with demonstrable work
  • Fluency in the LLM serving stack, from kernels and quantization up to schedulers and autoscaling
  • A record of shipping research or systems that other people build on
  • Drive to independently take a research bet from idea to result
  • Ability to work in-person in the NYC or San Francisco office

Soft skills

IndependenceCollaborative teamwork in an open environmentAnalytical thinking

About the company

Modal is building a new AI infrastructure layer covering the whole life of an LLM. Customers include category-defining companies like Lovable, Ramp, Cognition, DoorDash, and Suno. They recently raised a $355M Series C at a $4.65B valuation.

Languages: Angol: Felsőfok

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