Machine Learning Infrastructure Engineer

David Joseph & Company
  • San Francisco, California
  • $200,000–$400,000 Per Year
10 days ago

Job Description

Machine Learning Infrastructure Engineer

San Francisco, CA · On-site (5 days/week) · Full-time
Compensation: $200K–$400K + competitive early-stage equity

About the Company

Our client is a Series A AI research lab building large-scale foundation models for scientific and physical-AI domains. Backed by top-tier investors, they are pursuing a deliberately non-consensus technical thesis and are among the best-funded teams in their space. The founding team comes from self-driving, robotics, and scientific research, and they are scaling their research and engineering org significantly this year.

Founded 2024 · Small, fast-growing team · Industry: AI / foundation models / physical AI

The Role

You would own the distributed training and inference backbone for a foundation model trained from scratch — standing up clusters, building data and training pipelines at petabyte scale, and squeezing performance out of GPUs at a low level across model scales.

What you'll be doing

  • Design, deploy, and maintain large distributed ML training and inference clusters
  • Build efficient, scalable end-to-end pipelines to manage petabyte-scale datasets and training across the full ML lifecycle
  • Research and test training approaches, including parallelization techniques and numerical-precision trade-offs across model scales
  • Profile and debug low-level GPU operations to optimize performance
  • Track new research and bring fresh ideas into the work

Tech stack: Distributed training frameworks (FSDP, DeepSpeed), NVIDIA GPUs, Linux, Python, C++, Kubernetes/Docker, and a major cloud platform (GCP, AWS, or Azure).

Requirements

  • 2–10 years building large-scale ML infrastructure for core foundation models
  • Hands-on experience building infrastructure for foundation models trained from scratch, rather than fine-tuning existing models
  • A background at a science-focused or physical-AI company (for example self-driving, robotics, or biology)
  • Deep, demonstrable expertise optimizing large-scale training and inference workloads
  • Working proficiency with distributed training frameworks such as FSDP or DeepSpeed
  • A clear pattern of intentional, mission-driven career decisions
  • Able to work on-site 5 days/week in San Francisco (relocation supported)

Nice to Haves

  • Generalist experience spanning the full ML lifecycle
  • Low-level GPU performance optimization and debugging (CUDA, JAX)

Why Join

  • Take a bet on a distinctive, non-consensus approach to building intelligence
  • Join early, with real ownership of the training and inference backbone
  • Work in a domain with fast, objective ground-truth feedback and data at a scale beyond typical LLM training
  • Well-funded and building a strong, senior research and engineering team

Details

  • Location: San Francisco, CA
  • Work policy: In-person 5 days/week (relocation supported)
  • Compensation: $200K–$400K + competitive early-stage equity
  • Visa sponsorship: Open to supporting work authorization for the right candidate
  • Employment type: Full-time

Numbers & Facts

LocationSan Francisco, California
Salary$200,000–$400,000 Per Year

Skills

  • Amazon Web Services (AWS)unmatched
  • Artificial Intelligence (AI)unmatched
  • Biologyunmatched
  • C++ Programming Languageunmatched
  • CUDA (Compute Unified Device Architecture)unmatched
  • Cloud Computingunmatched
  • Data Clusteringunmatched
  • Data Managementunmatched
  • Debugging Skillsunmatched
  • Dockerunmatched
  • GCP (Good Clinical Practices)unmatched
  • GPU (Graphics Processing Unit)unmatched
  • JAX (Java API for XML)unmatched
  • Linux Operating Systemunmatched
  • Machine Learningunmatched
  • Microsoft Windows Azureunmatched
  • Performance Tuning/Optimizationunmatched
  • Python Programming/Scripting Languageunmatched
  • Research Laboratoryunmatched
  • Roboticsunmatched
  • Sales Pipelineunmatched
  • Scalable System Developmentunmatched
  • Scientific Researchunmatched
  • Training Data Setsunmatched

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