Multica v0.3.10

Multica is an open-source platform designed to manage and orchestrate AI agents within development workflows. Instead of running a single AI assistant, it allows multiple agents to collaborate, execute tasks, and share knowledge across projects.

It essentially acts like a control center where:

  • AI agents are assigned tasks

  • Progress is tracked in real time

  • Outputs and skills are reused across workflows

Multica currently supports Claude Code, Codex, OpenClaw, and OpenCode out of the box. The daemon auto-detects whichever CLIs you have installed. Since it’s open source, you can also add your own backends.

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Multica v0.3.10 Release Notes:

Changelog

  • 963c33f030ec65a21b8296625180e6600755a6fa MUL-2618 docs(project-resources): document local_directory resource type (#3347)
  • 2b5696703f1f5b38a95d32fccee1380279d2f3ff MUL-2703: feat(autopilots): webhook event filters per trigger (MUL-2334 follow-up) (#3231)
  • 746c0c4456d83fe73e194edca21335f89e8639c5 MUL-2746 fix(avatar): normalize relative avatar urls in desktop/web (#3100)
  • d16ed2806aa36916030f6048bd3bef4102b81504 MUL-2748 docs(autopilots): document webhook event filters + link from UI (#3359)
  • 0dcc35edc844292dbfe5858fe26268a6c14e82de ci: split mobile lint/typecheck out of frontend job (#3346)
  • be32e5af00c74cda60c2fe8c47d31402bc62b3a6 docs(changelog): add v0.3.10 release notes (#3362)
  • c968c13c879f378fc199069125675a5e3a193bad feat(auth): support mcn_ Cloud Node PATs verified via Fleet (#3349)
  • 31b58494cf12eb5a8cc7da849cbd3b6065933c13 feat(comments): align UpdateComment post-processing with CreateComment (#3337)
  • 963ed5cd0efc6b6412140cbbbec60e31825a0502 feat(comments): allow selecting multiple attachments
  • fa2a0e57eca623600edcc748c9b3b3adfb24f53e feat(views): swimlane supports parent / project / assignee grouping (MUL-2711) (#3311)
  • 341ce7bfa515ef87b2a506dc3d1e66d9652db461 feat: support local working directory for projects (MUL-2618 v1) (#3283)
  • 311cf4d99842caa5f2ad63618fcefacfc67ffaad fix(agent): surface Codex app-server no-progress diagnostics (MUL-2688)
  • f02bc56e70e81d5ba0eba347a14dc187f70b4030 fix(agent/cursor): remove obsolete 'chat' subcommand from argv (#3077) (#3092)
  • 735f18a4ef7a294d1352b381ea92936e9f67905c fix(agents): drop the import-hint callout on agent Skills tab (again) (#3301)
  • 298f54c81942916a3ed74a2a2b49b94c7b6fff37 fix(agents): gate on_comment trigger with private-agent visibility (MUL-2702) (#3302)
  • 607e64d722319461887fff5549cdf702ff9fa405 fix(autopilot): render trigger output in trigger timezone (#3324)
  • 668fe99cceb51d85933245a1e095fe8b20745217 fix(cli): drop "Showing N comments." stderr preamble on issue comment list (#3341)
  • df02fcf175f859868aeacd44858da0cb0a8c813c fix(cli): show real MEMBERS count in multica squad list (#3307)
  • 6261e2b6b2d58dd318522b0904559d46b2b701d6 fix(comments): clear editor immediately on submit to eliminate WS race glitch (#3331)
  • 2af2f7b3e49e4b98e6dc18212bef74e93dac16da fix(comments): defer input clearing until submit succeeds (#3344)
  • 7d24a8594ab0ab7990f27d5620ce24d5215382bb fix(comments): support edit-time attachment removal (#2965)
  • 17714c3ad13ce0d0bb08dc725a9a1bf5bb311511 fix(create-issue): preserve parent_issue_id through Create with agent flow (MUL-2534) (#3083)
  • 329fc0139dbdc0fd30bcf9c8ae046dcf69bf7c9d fix(create-project): anchor Source popover to top so it doesn't get pushed below the trigger when the modal is expanded
  • 7bc1aa756386f96dede38529890594fde2bcd2b1 fix(daemon): detect Codex Desktop bundle CLI (#3332)
  • 171ee842d44f28b866d69a21383ee43a1f9c2d9f fix(editor): preserve raw html-like text on paste (#3355)
  • 85daf7818aa7034e8aca154a7439229a028f5959 fix(editor): render code blocks when lowlight highlightAuto returns empty tree (#3358)
  • e55f050b84c86ef1e8c70033662a09182a965687 fix(i18n): clean up zh-Hans translation inconsistencies (#3308)
  • bed032f937d6eef79e4d6dda647f02143886f575 fix(issues): move local-directory hint out of the comment composer (#3363)
  • b343e13ec42d070eccb34f758109c0f9fd0f0459 fix(settings): remove orphan repo count from GitHub tab shortcut card (#3342)
  • 730fb61f4a42939453b6a5cb82b8daa2469a5c6d fix(views): keep sort label centered in viewport during board scroll (#3325)
  • 26ff52385b88ee564460d6a00fd2bc9cae5be84c fix: attribute Hermes usage to current model (MUL-2696)
  • bdb60acae91eca9caeb564a7e6c1681b18e3a20a fix: swimlane empty lanes in due to pagination (MUL-2724) (#3326)
  • e3723dbb22f71a4b48badf84b9df4179d63d6ac9 refactor(autopilot): centralize timezone default and cover invalid-timezone fallback (MUL-2742) (#3356)


Key Features

1. AI Agents as Teammates

Multica treats AI agents like real contributors. You can assign tasks, monitor progress, and manage their work similar to human developers.


2. Multi-Agent Orchestration

Instead of relying on a single AI model, Multica coordinates multiple agents working together on complex tasks, improving efficiency and scalability.


3. Skill Reuse and Compounding

One of its most innovative features is skill accumulation. Agents can reuse previously learned solutions, reducing redundancy and improving performance over time.


4. Real-Time Workflow Tracking

You get a unified dashboard where you can:

  • Track task progress

  • Monitor agent activity

  • Identify blockers and results

This makes it suitable for structured development environments.


5. CLI and Web Interface

Multica provides both:

  • A command-line interface for developers

  • A web UI for managing workflows and agents

It supports local and cloud-based environments, offering flexibility in deployment.


6. Open Source and Flexible

Being open source, Multica allows:

  • Full customization

  • Self-hosting

  • Integration with different AI models and tools

This makes it appealing for teams that want control over their AI infrastructure.


Performance and Use Cases

Multica is designed for advanced workflows rather than casual use. It performs best in environments where multiple AI agents are needed to collaborate.

Typical use cases include:

  • AI-assisted software development

  • Automation pipelines

  • Multi-step research and analysis

  • DevOps and engineering workflows

Its ability to coordinate agents makes it especially useful for complex tasks that go beyond simple prompts.

Quick Install

curl -fsSL https://raw.githubusercontent.com/multica-ai/multica/main/scripts/install.sh | bash

Installs the Multica CLI on macOS and Linux. Works with Homebrew or downloads the binary directly.

Windows (PowerShell):

irm https://raw.githubusercontent.com/multica-ai/multica/main/scripts/install.ps1 | iex

Then configure, authenticate, and start the daemon in one command:

multica setup          # Connect to Multica Cloud, log in, start daemon

Self-hosting? Add --with-server to deploy a full Multica server on your machine:

curl -fsSL https://raw.githubusercontent.com/multica-ai/multica/main/scripts/install.sh | bash -s -- --with-server
multica setup self-host

Requires Docker. See the Self-Hosting Guide for details.


Getting Started

1. Set up and start the daemon

multica setup           # Configure, authenticate, and start the daemon

The daemon runs in the background and auto-detects agent CLIs (claude, codex, openclaw, opencode) on your PATH.

2. Verify your runtime

Open your workspace in the Multica web app. Navigate to Settings → Runtimes — you should see your machine listed as an active Runtime.

What is a Runtime? A Runtime is a compute environment that can execute agent tasks. It can be your local machine (via the daemon) or a cloud instance. Each runtime reports which agent CLIs are available, so Multica knows where to route work.

3. Create an agent

Go to Settings → Agents and click New Agent. Pick the runtime you just connected and choose a provider (Claude Code, Codex, OpenClaw, or OpenCode). Give your agent a name — this is how it will appear on the board, in comments, and in assignments.

4. Assign your first task

Create an issue from the board (or via multica issue create), then assign it to your new agent. The agent will automatically pick up the task, execute it on your runtime, and report progress — just like a human teammate.


User Experience

The concept behind Multica is powerful, but it comes with complexity.

  • Requires understanding of AI agents and workflows

  • Setup may involve configuring runtimes and integrations

  • More suited for developers than beginners

However, once configured, it provides a highly structured and scalable system.


Pros and Cons

Pros

  • Open source and highly customizable

  • Supports multi-agent collaboration

  • Reusable skill system improves efficiency

  • Real-time workflow tracking

  • Flexible deployment options

Cons

  • Still early-stage and evolving

  • Setup complexity is high

  • Requires technical knowledge

  • Not suitable for simple AI tasks


Who Should Use Multica

Multica is ideal for:

  • Developers working with AI agents

  • Teams building automated workflows

  • Companies experimenting with agent-based systems

  • Advanced users exploring AI orchestration

It is not designed for casual users who just need a simple chatbot.


Final Verdict

Multica represents the next step in AI tooling, moving from single assistants to collaborative AI systems. While still evolving, it introduces a powerful concept that could shape how teams use AI in development.

Multica is a promising platform for advanced users who want to build scalable, multi-agent AI workflows with full control and flexibility.

If you are exploring multi-agent AI systems or building automated development workflows, Multica is an emerging tool worth paying attention to. It introduces a new way to treat AI agents not just as tools, but as collaborative team members working alongside developers.

Multica v0.3.10
Free
Software Informations:
Developer:

Operating System:
Windows / macOS / Linux
Date Added:
2026-05-27T15:01:51.715Z
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