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ray

Distributed Python compute with Ray — @ray.remote tasks/actors for cluster-scale parallelism, Ray Data for large-batch preprocessing, Ray Train for distributed model training (DDP/FSDP/DeepSpeed), Ray Tune for scalable hyperparameter search, and Ray Serve for model serving. Use when scaling a Python workload (docking screens, million-cell atlas preprocessing, hyperparameter sweeps, multi-GPU training) from a laptop to a multi-node cluster with minimal code changes. Ray Tune can use optuna as a search algorithm; Ray Train wraps pytorch-lightning-style training loops.

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Source facts

Repository
stanfish06/skillquarium
Last source activity
August 10, 2026 at 01:51
Detected SKILL.md language
English
Stars
7
Forks
4

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