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Machine Learning Systems & Infrastructure Engineer

spaitial · London

New
🇬🇧 English
Python PyTorch Docker Kubernetes Terraform SQL Postgres BigQuery Snowflake SQLite AWS GCP Azure Kubeflow Pipelines MLflow Prometheus Grafana

Job description

About the role

SpAItial is building the next generation of world models that understand physics and geometry, enabling generative 3D AI for robotics, AR/VR, gaming and cinema. As a Machine Learning Systems & Infrastructure Engineer you will own the end‑to‑end pipelines that turn raw real‑world data into trained models and production endpoints, working closely with a small research‑focused team.

Key responsibilities

  • Design, implement and operate scalable training stacks, dataset loaders, checkpointing and experiment orchestration for large diffusion models.
  • Improve distributed training performance and stability using PyTorch DDP/FSDP, NCCL and pre‑emption‑safe sharded checkpoints.
  • Build end‑to‑end Python pipelines that ingest, clean and version petabyte‑scale training data from third‑party sources.
  • Operate ML workflow orchestration tools (Kubeflow Pipelines, Airflow), GPU schedulers (Volcano, Slurm) and experiment trackers (MLflow, Weights & Biases).
  • Containerize workloads with Docker and Kubernetes, maintain IaC via Terraform, and set up CI/CD pipelines with self‑hosted GPU runners.

Required profile

  • 3+ years of production‑quality Python development in a large, multi‑author codebase.
  • Hands‑on experience with modern ML training stacks (PyTorch, DDP/FSDP) and debugging distributed GPU jobs.
  • Proven ability to ship complex data pipelines at scale, including handling rate‑limited or undocumented APIs.
  • Practical knowledge of cloud platforms (AWS, GCP or Azure), object storage, IAM and cost‑aware engineering.
  • Experience with containers (Docker, Kubernetes) and infrastructure‑as‑code tools such as Terraform.

Required skills

  • Python
  • PyTorch (DDP/FSDP)
  • Docker & Kubernetes
  • Terraform
  • SQL (Postgres, BigQuery, Snowflake, SQLite)
  • Cloud platforms (AWS, GCP, Azure)
  • Kubeflow Pipelines / MLflow
  • Prometheus & Grafana

Questions fréquentes

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Source : ats:ashby

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Published 5 hours ago

Expires 1 month from now

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spaitial

London