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What is dstack?

dstack is a powerful orchestration platform that unifies GPU management for machine learning workflows across cloud, Kubernetes, and on-premise environments. Instead of requiring teams to manage complex Helm charts, Kubernetes operators, or manual infrastructure setups, dstack offers a simple declarative interface to handle clusters, tasks, and environments. It natively integrates with top GPU cloud providers for automated provisioning, while also supporting hybrid setups through Kubernetes and SSH fleets. Developers can easily spin up containerized dev environments that connect to local IDEs, allowing them to test, debug, and iterate faster. Scaling from small single-node experiments to large distributed training jobs is effortless, with dstack handling orchestration and ensuring optimal resource efficiency. Beyond training, it enables production deployment by turning any model into a secure, auto-scaling endpoint compatible with OpenAI APIs. The proprietary design ensures lower GPU costs and avoids vendor lock-in, making it attractive for teams balancing flexibility and scalability. Real-world users highlight how dstack accelerates workflows, reduces operational burdens, and improves access to affordable GPUs across multiple providers. Teams benefit from faster iteration cycles, improved collaboration, and simplified governance, especially in enterprise setups. With open-source availability, enterprise support, and quick setup, dstack empowers ML teams to focus on research and innovation rather than infrastructure complexity.

What is Dapple?

Dapple provides an Enterprise OS Cloud tailored for organizations in regulated industries and those leveraging AI, offering a solid AI infrastructure that adheres to stringent requirements for isolation, data residency, governance, and performance. This cutting-edge solution occupies the niche between public cloud offerings and private data centers, combining dedicated, single-tenant GPU infrastructure with an integrated control plane that manages orchestration, compliance, connectivity, observability, and operational tasks. Featuring advanced functionalities such as topology-aware placement, multi-GPU scheduling, fault-domain isolation, and reserved clusters, Dapple guarantees reliable performance without interference from other users. Moreover, private connectivity effectively merges current cloud environments with dedicated computing resources, while crucial aspects like identity management, container orchestration, threat protection, and governance policies remain robust throughout the deployment lifecycle. On an architectural level, compliance is stringently upheld before any workload is executed, ensuring adherence to in-country data residency mandates, audit responsibilities, and various regulatory standards, thus cultivating a secure environment for sensitive operations. Furthermore, Dapple not only empowers enterprises to innovate without constraints but also reinforces their commitment to upholding stringent compliance measures, all while protecting vital data assets. This balance of innovation and security positions Dapple as a leader in the AI infrastructure landscape.

Media

Media

Integrations Supported

Amazon Web Services (AWS)
Google Cloud Platform
Microsoft Azure
Python

Integrations Supported

API Availability

API Availability

Pricing Information

Pricing not provided

Pricing Information

Pricing not provided

Supported Platforms

SaaS

Supported Platforms

SaaS

Customer Service / Support

Web-Based Support

Customer Service / Support

Web-Based Support

Training Options

Documentation Hub

Training Options

Documentation Hub
Online Training

Company Facts

Organization Name

dstack

Date Founded

2022

Company Location

Germany

Company Website

dstack.ai/

Company Facts

Organization Name

Dapple

Date Founded

2025

Company Location

United States

Company Website

dapple.co

Categories and Features

AI Control Planes

Not specified

AI Development

Not specified

Categories and Features

AI Control Planes

Not specified

AI Infrastructure

Not specified

Cloud GPU

Not specified

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