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What is Modular?

Modular is a next-generation AI inference platform designed to deliver high-performance, scalable, and hardware-agnostic AI deployment. It provides a fully unified stack that spans from low-level kernel optimization to cloud-based inference endpoints, eliminating the need for multiple disconnected tools. The platform allows developers to run AI models across a wide range of hardware, including GPUs, CPUs, and ASICs, without rewriting code. Modular’s advanced compiler technology automatically generates optimized kernels for different hardware targets, ensuring maximum efficiency and performance. It supports both open-source and custom models, making it suitable for a wide variety of AI applications. The platform offers flexible deployment options, including managed cloud environments, private VPC setups, and self-hosted infrastructure. Modular is designed to reduce costs through improved hardware utilization and dynamic resource allocation. Its ability to scale across different hardware environments helps avoid vendor lock-in and ensures long-term flexibility. Developers can achieve faster inference speeds and lower latency while maintaining full control over their infrastructure. The platform also provides deep observability and customization for performance tuning. By unifying the AI stack, Modular simplifies the process of building and deploying production-ready AI systems. Ultimately, it enables organizations to run AI workloads more efficiently, reliably, and at scale.

What is Archestra?

Archestra is an open-source, self-hosted AI platform that facilitates the management and deployment of agents across an organization. It boasts agentic chat capabilities designed for users without a technical background, in addition to various applications, skills, collaborative initiatives, a server-side agent runtime, MCP orchestration, permission-aware RAG, LLM and MCP proxies, security safeguards, and extensive observability, all seamlessly integrated into one platform. Through single sign-on (SSO) authentication, users can engage with tools while maintaining their unique identities rather than relying on shared service accounts. The platform organizes projects to bring together chats, files, scheduled tasks, and instructions, while agents function within isolated containers, activated by triggers such as schedules, emails, or webhooks. MCP servers are deployed within the organization's Kubernetes environment, adhering to security-validated promotion protocols that implement separate credentials and network rules. Additionally, the knowledge bases can connect with Confluence, Jira, drives, and internal documents, preserving source-system ACLs to ensure users only access information they are authorized to view. Overall, this extensive array of features establishes Archestra as an essential asset for organizations aiming to enhance their AI deployment efficiency and governance. By offering a user-friendly experience coupled with robust security measures, Archestra empowers teams to innovate while maintaining stringent access controls.

Media

Media

Integrations Supported

Mojo

Integrations Supported

Anthropic
Azure OpenAI Service
Confluence
Gemini Enterprise Agent Platform
Jira
Kubernetes
Model Context Protocol (MCP)
OpenAI

API Availability

API Availability

Pricing Information

Pricing not provided

Pricing Information

Free
Free Version

Supported Platforms

SaaS
On-Prem

Supported Platforms

On-Prem

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

Modular

Date Founded

2022

Company Location

United States

Company Website

www.modular.com

Company Facts

Organization Name

Archestra

Company Location

United States

Company Website

archestra.ai/

Categories and Features

AI Development

Not specified

AI Inference

Not specified

AI Infrastructure

Not specified

Categories and Features

Agentic AI

Not specified

AI Infrastructure

Not specified

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