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Dstack

Enterprise MLOps platform for scalable, compliant machine learning workflows

Bootstrapped
MLOpsWorkflow AutomationModel DeploymentScalability
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About

Dstack enables enterprises to streamline and scale machine learning operations with robust workflow automation and infrastructure management. It supports compliance standards and integrates seamlessly into existing data ecosystems to accelerate model deployment and governance.

This description came from a bulk import and has not yet been checked against the vendor's own page. Treat it as unverified.

Enterprise Readiness

from cataloged data

Not scored. Nobody has checked this entry against Dstack’s own site yet, so the signals below are unverified and we will not turn them into a rating. The breakdown shows what our record holds.

Security & ComplianceNot disclosed

No compliance certifications listed

Deployment FlexibilityStrong

Flexible deployment: Cloud, Self-Hosted

Integration DepthStrong

8 documented integrations

Proven AdoptionPartial

5 documented use cases

Company MaturityPartial

Founded 2020

Composite of public compliance, deployment, integration, adoption, and company signals. “Not disclosed” reflects gaps in available data, not a vendor deficiency.

Independently sourced

Pulled directly from regulator filings and platform APIs. No vendor or editorial input.

Enterprise Use Cases

Automated ML workflow orchestration
Model versioning and governance
Scalable model deployment
Collaboration across data science teams
Compliance and audit trail management

Integrations

GitHubDockerKubernetesAWSAzureGoogle CloudMLflowSlack

How Dstack compares

ToolReadinessPricingDeploymentComplianceIntegrations
DstackNot scoredFreemiumCloud, Self-Hosted8
GroqNot scoredEnterpriseCloud, On-Premise, Hybrid, Self-Hosted8
Weights & Biases W&BNot scoredFreemiumCloud, On-Premise, Hybrid, Self-Hosted8
Comet ML Platform70 · StrongEnterpriseCloud, On-Premise, Hybrid, Self-Hosted8

Peers from the same category, ranked by Enterprise Readiness. Readiness is a composite of cataloged compliance, deployment, integration, adoption, and company signals.

Frequently Asked Questions

What is Dstack used for?

Dstack is enterprise MLOps platform for scalable, compliant machine learning workflows. It is commonly used for automated ml workflow orchestration, model versioning and governance, scalable model deployment, and collaboration across data science teams.

Is Dstack free, and how is it priced?

Dstack offers a free tier, with paid plans that add capacity and features.

How can Dstack be deployed?

Dstack supports Cloud and Self-Hosted deployment. On-premise and self-hosted options support data-residency and air-gapped requirements.

What does Dstack integrate with?

Dstack documents 8 integrations, including GitHub, Docker, Kubernetes, AWS, Azure, and Google Cloud.

When was Dstack founded?

Dstack was founded in 2020.

Is Dstack enterprise-ready?

Based on cataloged data, Dstack has an Enterprise Readiness score of 54/100 (Established tier), derived from its compliance, deployment, integration, adoption, and company-maturity signals.

Quick Facts

PricingFreemium
DeploymentCloud, Self-Hosted
Founded2020
CategoryData & MLOps

Procurement

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