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Distributed Training Engineer (Remote)

BairesDev · District Capital

Remote
Remote Mid 🇬🇧 English
PyTorch DDP FSDP DeepSpeed CUDA Triton TensorRT parameter sharding pipeline parallelism data sharding

Job description

About the role

As a Distributed Training Engineer you will lead the scaling and optimization of large‑scale machine‑learning workloads across multi‑GPU and multi‑node environments. You will work remotely with a global team of top‑tier engineers, ensuring that massive datasets and models run efficiently and reliably.

Key responsibilities

  • Implement and fine‑tune distributed training strategies using PyTorch DDP, FSDP, and DeepSpeed.
  • Profile training performance and GPU utilization with Nvidia Nsight and related tools.
  • Design mixed‑precision and memory‑optimization pipelines to maximize throughput and reduce footprint.
  • Resolve coordination and synchronization challenges across multi‑node clusters using CUDA and Triton.
  • Scale large models through parameter sharding, pipeline parallelism, and efficient data sharding techniques.
  • Collaborate with ML research teams to align infrastructure with evolving model requirements.

Required profile

  • 4+ years of experience in Machine Learning Engineering or Distributed Systems.
  • Proven expertise with distributed training frameworks such as PyTorch DDP, FSDP, or DeepSpeed.
  • Hands‑on experience with Nvidia GPU profiling tools (e.g., Nsight).
  • Strong proficiency in CUDA programming and multi‑node performance optimization.
  • Experience with inference optimization tools like Triton or TensorRT.
  • Advanced proficiency in English.

Required skills

  • PyTorch DDP
  • FSDP
  • DeepSpeed
  • Nvidia Nsight
  • CUDA
  • Triton
  • TensorRT
  • Mixed‑precision training
  • Parameter sharding
  • Pipeline parallelism
  • Data sharding

What we offer

  • 100% remote work from anywhere.
  • Competitive compensation in USD or local currency.
  • Provided hardware and software setup for home office.
  • Flexible hours and self‑managed schedule.
  • Paid parental leave, vacations, and national holidays.
  • Mentorship, promotion pathways, and continuous skill development.

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Published 2 months ago

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BairesDev

District Capital