Chris Roberts 4c66930a6e drainer: respect max parallel setting when draining (#26175)
When draining nodes allocs are checked for a healthy state and
marked to be drained, with the value in the max parallel setting
determining how many allocs will be migrated. Depending on the
circumstances, however, the max parallel setting may not be
properly respected.

Given a job with max parallel set to one, a group count greater
than one, and allocs on multiple nodes: Draining a single node
will result in one alloc being marked to drain. If another
node is immediately drained the alloc running on the first
node will be seen as "healthy" and another alloc will be
marked to be drained resulting in two allocs being marked
for migration at the same time. This can lead to issues with
service availablility.

To prevent this allocs can only be marked as healthy when the
alloc has not been marked for migration. This prevents migrating
allocs being seen as healthy which results in the max parallel
setting being properly respected.
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Nomad is a simple and flexible workload orchestrator to deploy and manage containers (docker, podman), non-containerized applications (executable, Java), and virtual machines (qemu) across on-prem and clouds at scale.

Nomad is supported on Linux, Windows, and macOS. A commercial version of Nomad, Nomad Enterprise, is also available.

Nomad provides several key features:

  • Deploy Containers and Legacy Applications: Nomads flexibility as an orchestrator enables an organization to run containers, legacy, and batch applications together on the same infrastructure. Nomad brings core orchestration benefits to legacy applications without needing to containerize via pluggable task drivers.

  • Simple & Reliable: Nomad runs as a single binary and is entirely self contained - combining resource management and scheduling into a single system. Nomad does not require any external services for storage or coordination. Nomad automatically handles application, node, and driver failures. Nomad is distributed and resilient, using leader election and state replication to provide high availability in the event of failures.

  • Device Plugins & GPU Support: Nomad offers built-in support for GPU workloads such as machine learning (ML) and artificial intelligence (AI). Nomad uses device plugins to automatically detect and utilize resources from hardware devices such as GPU, FPGAs, and TPUs.

  • Federation for Multi-Region, Multi-Cloud: Nomad was designed to support infrastructure at a global scale. Nomad supports federation out-of-the-box and can deploy applications across multiple regions and clouds.

  • Proven Scalability: Nomad is optimistically concurrent, which increases throughput and reduces latency for workloads. Nomad has been proven to scale to clusters of 10K+ nodes in real-world production environments.

  • HashiCorp Ecosystem: Nomad integrates seamlessly with Terraform, Consul, Vault for provisioning, service discovery, and secrets management.

Quick Start

Testing

See Developer: Getting Started for instructions on setting up a local Nomad cluster for non-production use.

Optionally, find Terraform manifests for bringing up a development Nomad cluster on a public cloud in the terraform directory.

Production

See Developer: Nomad Reference Architecture for recommended practices and a reference architecture for production deployments.

Documentation

Full, comprehensive documentation is available on the Nomad website: https://developer.hashicorp.com/nomad/docs

Guides are available on HashiCorp Developer.

Roadmap

A timeline of major features expected for the next release or two can be found in the Public Roadmap.

This roadmap is a best guess at any given point, and both release dates and projects in each release are subject to change. Do not take any of these items as commitments, especially ones later than one major release away.

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See the contributing directory for more developer documentation.

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