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Alternatives

Products that do what My first SaaS to help human developers and AI agents share context does

Hello HN, I created Decispher (decispher.com) to enable human developers and AI agents working alongside each other to share their context. It has some pretty cool features, like Branch Story (explains why a branch's code looks the way it does) and Session Context Transfer (an MCP tool that can copy context from one chat, agent, or machine to another). You can also capture context from engineering platforms like Slack, JIRA, and Git(hub/lab) just by tagging @Decispher.

  1. 1
    N71141

    Give all your AI agents one shared context

    Jul 2026 · n71.ai

  2. 2

    One API to scrape, enrich, and extract the internet

    Jul 2026 · context.dev

  3. 3

    Reusable AI Memory for Smarter Prompts Anywhere

    Nov 2025

  4. 4IB
  5. 5

    Personal URLs for sharing context with AI

    Nov 2025

  6. 6

    Attach reference projects for AI coding tools

    Apr 2026 · marketplace.visualstudio.com

  7. 7
    Weavable234

    Give every AI agent persistent work context

    May 2026 · weavable.ai

  8. 8

    Context-aware AI assistants in any web app

    2025

  9. 9
    Kollab382

    Shared workspace where teams work with agents together

    Apr 2026 · kollab.im

  10. 10
    Campus326

    One project space for humans and AI agents

    Jul 2026 · campus.flutterflow.io

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    Shared Context for your AI Agents & Automations

    Feb 2026

  12. 12

    Knowledge Sharing for AI Agents

    Mar 2026

  13. 13

    Connect AI agents to governed metadata via MCP

    Jan 2026

  14. 14AA

    I’m Michel, co-founder and CEO of Airbyte (https://airbyte.com/). We’ve spent the last six years building data connectors. Today we're launching Airbyte Agents (https://docs.airbyte.com/ai-agents/), a unified data layer for agents to discover information and take action across operational systems. Here’s a quick walkthrough: https://www.youtube.com/watch?v=ZosDytyf1fg As agents move into real workflows, they need access to more tools (e.g. Slack, Salesforce, Linear). That means a ton of API plumbing: authentication, pagination, filters,…

    May 2026

  15. 15UA

    Hey HN! I'm Fabio and I built UltraContext, a simple context API for AI agents with automatic versioning. After two years building AI agents in production, I experienced firsthand how frustrating it is to manage context at scale. Storing messages, iterating system prompts, debugging behavior and multi-agent patterns—all while keeping track of everything without breaking anything. It was driving me insane. So I built UltraContext. The mental model is git for context: - Updates and deletes automatically create versions (history is never lost) - Replay state at any point The API is 5 methods:…

    Jan 2026 · ultracontext.ai

  16. 16

    The context hub for your agents

    Feb 2026

  17. 17DP

    Hello HN, I'm Ali, building Decispher. The problem we're working on is that coding agents repeatedly rediscover context that already exists inside an engineering organization. A developer working on a feature can combine information from previous PRs, Jira tickets, Slack discussions, ownership boundaries, architectural decisions and their own experience. Coding agents usually start with a prompt and a repository, then spend tokens searching for that same context—or miss it entirely. Decispher is a context and memory layer for engineering agents. It currently has three parts: 1) Context…

    6d ago

  18. 18AW

    I've been presenting at local meetups about Context Engineering, RAG, Skills, etc.. I even have a vbrownbag coming up on LinkedIn about this topic so I figured I would make a basic example that uses bedrock so I can use it in my talks or vbrownbags. Hopefully it's useful.

    Apr 2026 · github.com

  19. 19IB

    Excited to share a project I’ve been building for months! Would love to receive honest feedback :) My motivation: AI is clearly going to be the interface for data. But earlier attempts (text-to-SQL, etc.) fell short — they treated it like magic. The space has matured: teams now realize that AI + data needs structure, context, and rules. So I built a product to help teams deliver “chat with data” solutions fast with full control and observability (agent tracing, quality scores, etc) — am I wrong? The product allows you to connect any LLM to any data source with centralized context…

    Oct 2025 · github.com

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    A collaborative AI workspace, built on your company context. Build and orchestrate agents right alongside your team

    5d ago · gem-manatee-cd0.notion.site

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    Your company-wide AGENTS.md

    Jun 2026 · alignbase.ai

  22. 22

    Repo context workbench for humans and AI agents

    Jul 2026 · onboardy.dev

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    Your project’s context, organized for AI coding agents

    Apr 2026

  24. 24GM

    Hi HN, I'm Tony. I built Grov (https://grov.dev/) because I hit a wall with current AI coding assistants: they are "single-player." The moment I kill a terminal pane or close a chat session, the high-level reasoning and architectural decisions generated during that session are lost. If a teammate touches that same code an hour later, their agent has to re-derive everything from scratch or read many documentation files for basically any feature implemented or bug fixed. I wanted to stop writing a lot of docs for everything just to give context to my agents or have to re-explain…

    Jan 2026 · github.com

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