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By nvidia

tao-run-on-kubernetes

nvidia

Run TAO training jobs on your GPU cluster.

GPU job execution

What it does

Submits TAO container training and inference jobs to Kubernetes clusters with NVIDIA GPU scheduling.

When to use it

Use it on EKS, GKE, AKS, or on-premises clusters with NVIDIA GPU support, or when integrating TAO into a Kubernetes-native ML platform.

How to use it

Give it a container image, command, and GPU count; it submits a Kubernetes Job and returns job status and logs through the SDK.

What you provide

  • container image
  • training command
  • GPU count

Uses


Access · 5

This skill

Kubernetes Jobs

Write

Submits Kubernetes Jobs (irreversible)

S3 job-scoped result prefixes

Write

Deletes S3 result prefixes (irreversible)

Kubernetes Job status and logs

Read

Reads Job status and logs

setup-nvidia-gpu-host.sh

Execute

GPU host checks

Good to know

  • cannot be undone: Kubernetes Jobs; S3 job-scoped result prefixes

What you need · 14

Python is required to import and run the TAO and Kubernetes SDK clients.

The nvidia-tao-sdk package with its kubernetes extra must be installed; the documented pin is 7.1.0rc42.

The Kubernetes Python client must be installed.

An authenticated cluster reachable through kubeconfig or an in-cluster service account is required.


About this skill

Visibility
Public
Repository
nvidia/skills
Created
Oct 8, 2026
Updated
Oct 8, 2026
Files
8