Mahalaxmi
Mahalaxmi
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Cross-platform · Windows · macOS · Linux

Run a whole engineering team of AI agents. On your machine. Right now.

Mahalaxmi orchestrates dozens of AI coding agents working in parallel — each with its own isolated workspace, intelligently assigned tasks, and only the code context it needs. Ship in hours what used to take days.
Download Free — macOS / Windows / LinuxRead the Whitepaper

Trusted by engineering teams using Claude Code, OpenAI, AWS Bedrock, Google Gemini, and more.

You're paying for AI. You're using 5% of it.

Every AI coding assistant works the same way: one conversation. One stream of output. One task at a time.

Your codebase has 50 independent modules that could be built in parallel. Your AI is working on them sequentially. That's not a tool problem. That's an orchestration problem.

Mahalaxmi: Multi-Agent AI Orchestration for Real Codebases

What a single AI agent doesWhat Mahalaxmi does
One conversation, one task8+ agents, 8+ tasks simultaneously
Full codebase context (overwhelming)Relevant files only, per task
One AI providerAny combination of providers
Manual retries on failureSelf-verification + auto-retry with error context
No oversight structurePlan review, budget gate, file accept/reject

How a Mahalaxmi cycle works

1
Manager Phase — Build the plan

Manager AI agents analyze your codebase and requirements, then propose an execution plan. Multiple managers debate via a consensus engine that semantically deduplicates overlapping proposals.

2
You review — before work begins

The execution plan surfaces as a visual list. Add tasks, remove tasks, adjust scope. Every modification is audit-logged. Only when you approve do workers start.

3
Worker Phase — Execute in parallel

Worker agents claim tasks in dependency order. Each worker runs in a Git worktree — a fully isolated copy of the repo. Context is pre-filtered to only the relevant files.

4
Results — Clean PRs, one per worker

Each worker produces a branch and pull request. Post-cycle validation checks acceptance criteria. You accept or reject individual file changes. The work is done.

Built for developers who ship

PTY-Native Terminal Control

Not screen capture. Real pseudo-terminal control that works with any AI CLI tool — reliable in ways that OCR never is.

Consensus Engine

Four merge strategies (Union, Intersection, WeightedVoting, ComplexityWeighted) with semantic deduplication using Jaccard similarity and LLM arbitration.

Intelligent Context Routing

Workers receive only the files relevant to their task — scored by keyword overlap, import-graph proximity, and historical co-occurrence.

Security Pipeline

Every worker diff is scanned for secrets, CVEs, SAST issues, and license violations before the PR is created.

AI-Agnostic

Claude Code, OpenAI Foundry, AWS Bedrock, Google Gemini, Kiro, Goose, DeepSeek, Qwen Coder — mix providers in a single cycle.

Git Worktree Isolation

Every worker runs in a dedicated Git worktree. Workers cannot interfere with each other. Each output is a clean pull request.

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What engineers say

We went from 4-hour AI sessions with one agent to 20-minute parallel cycles with 8. The plan review step alone saves us from shipping garbage.


Senior Engineer, fintech startup

The AI-agnostic part is what sold us. We had Claude and Bedrock contracts already. Mahalaxmi uses both in the same cycle — the right task goes to the right model.


CTO, Series A SaaS company

The security pipeline running automatically on every worker PR means we stopped playing whack-a-mole with secrets in diffs.


DevSecOps Lead, healthcare tech

Start free. Scale as you grow.

You pay ThriveTech for the orchestration software — not for AI tokens, not for compute, not for a cloud proxy.

Free

$0

Download Free
    Student & OSS

    $12

    Apply for Student License
    • 44% discount

    • All features included

    • Valid student ID or OSS contribution required

    • Renews annually with verification

    Pro Desktop

    $15

    Get Pro Desktop
    • 14-day free trial

    • Cloud-hosted cx22 server (2 vCPU, 4 GB)

    • 4 AI workers

    • 3 repositories

    • 2 webhook endpoints

    • 7-day audit log retention

    • Email support

    • Save 20% with annual ($144/yr)

    Enterprise

    $0

    Contact Sales
    • Centralized license management

    • Team analytics & reporting

    • Enterprise security

    • Dedicated support

    See full comparison table
    New

    Mahalaxmi Cloud

    Don't want to install anything? Get a dedicated hosted orchestration server — provisioned in minutes, accessible from VS Code.
    Learn about Mahalaxmi CloudCloud pricing — from $49/mo

    Stop running one AI agent. Start running a team.

    Your codebase is parallelizable. Your development shouldn't be serialized.

    Download Mahalaxmi — Free

    Runs on Windows, macOS, and Linux. No account required for Trial.