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Peliqan

Build AI Agents on Superagent

Build intelligent AI Agents on top of Superagent with Peliqan. Query your data in plain English, automate workflows with AI, and write changes back – all through a single platform with 250+ connectors and a built-in data warehouse.

Superagent

Build AI Agents

Build AI Agents on top of Superagent

Build intelligent AI Agents on top of Superagent, with Peliqan’s AI data foundation:

    • Superagent MCP Server – let Claude, ChatGPT, or any AI client query and update your Superagent data
    • Superagent in n8n AI Agents – build automated workflows that reason on your data
    • Superagent in Make – trigger AI-powered actions from your Superagent events
    • Text-to-SQL on Superagent – ask questions in plain English, get SQL-powered answers
    • Superagent RAG – semantic search with out-of-the-box embeddings (vectors)
    • Superagent Graph RAG – traverse relationships across your data entities
    • Unified 360° data – combine Superagent with 250+ other sources in one warehouse

Superagent MCP Server

Publish a Superagent MCP Server with full read and write capabilities.

Peliqan syncs a read-only copy of your Superagent data into its built-in warehouse – your AI agents query the cache, your live Superagent is never touched. Connect Claude, ChatGPT, or any MCP client and start querying Superagent in plain English.

Build MCP Server

Build AI agents in n8n

Superagent in n8n

Build AI Chatbots and AI Agents in n8n that query your Superagent data using Text-to-SQL and perform RAG on Superagent documents and records.

Peliqan acts as the data layer – syncing your Superagent data, converting natural language to SQL, and returning results your n8n agent can act on.

Implement a “Text to SQL” chatbot on Superagent

Implement an AI Chatbot that answers analytical questions on Superagent data using Text-to-SQL.

Ask “what were my top 10 customers last quarter?” or “which deals are stalled?” and get instant, accurate answers.

Peliqan converts your question to SQL, runs it against your Superagent warehouse, and returns structured results – no SQL knowledge required.

Text to SQL

Implement a chatbot

Implement a chatbot with RAG on Superagent

Implement RAG (retrieval-augmented generation) on Superagent data with Peliqan’s out-of-the-box vector store.

Peliqan automatically creates embeddings of your Superagent records, notes, and documents – so your AI agents can search semantically, not just by keywords.

Combine RAG with Text-to-SQL for AI that can both reason on numbers and understand context.

Combine Superagent data with 250+ sources

Combine data from Superagent with 250+ other connectors in Peliqan’s built-in warehouse.

Build unified 360° views of customers, deals, products, or employees – pulling from Superagent, your CRM, ERP, HR systems, and more.

Feed these unified data models to your AI Agents so they can answer cross-functional questions in a single query.

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Combine data

Prepare your Superagent data for AI

Access, combine, and report on data from Superagent and all your SaaS apps instantly. Gain valuable insights by bringing all your business data together in one place within minutes.

SaaS Data Cockpit

Unify, Automate & Activate Your Data 

Connect all your SaaS apps, databases, and spreadsheets into one workspace. Build automations, analytics pipelines, and data apps — all in one place.

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Frequently Asked Questions

Why do I need Peliqan for my AI ?

Most AI tools can’t access your Superagent data directly. Peliqan solves this by syncing Superagent into a built-in data warehouse and exposing it through MCP, Text-to-SQL, and RAG.

Your AI agents get governed, real-time access to Superagent data combined with 250+ other sources – without building custom integrations.

Peliqan is the only platform that lets AI agents combine structured SQL queries with semantic RAG search on Superagent data in a single context.

There are different ways to build an AI agent that can query data in Superagent and take actions in Superagent. For example you can build an AI agent in n8n and use Peliqan as the data foundation. Peliqan will sync your Superagent data to its built-in data warehouse and allow the AI Agent to perform “Text to SQL” and RAG to answer questions and to perform reasoning on Superagent data, combined with data from 250+ other sources.

First sign up for a free trial on Peliqan.io, next connect Superagent in Peliqan. Once that is done, create an AI agent in n8n and use the Peliqan n8n node in your worflow. Add Peliqan as a “tool” to your AI Agent node, so that the AI agent can query your Superagent data using Text to SQL.

There are different options to use RAG (retrieval augmented generation) in your AI Agent with Superagent data. One option is to create a workflow in n8n that fetches all Superagent data from Peliqan and stores it in Supabase as a vector store, with embeddings created using e.g. OpenAI.

Connect Superagent in Peliqan, then create an API handler using the built-in MCP template. Expose the Superagent tables and actions your AI needs, set role-based permissions, and run pip install mcp-server-peliqan to connect Claude or ChatGPT. Your AI agents query a cached copy of your data – your live Superagent is never touched. The full setup takes under 10 minutes.

n8n is a great tool to build AI chatbots that use Text to SQL, to answer any analytical question on your Superagent data. Any question will be converted by the AI agent into an SQL query, which is executed by Peliqan on the Superagent data in the data warehouse.

In order to prepare your Superagent data for RAG, you need to create embeddings and store them in a vector store. This can be done by creating a workflow in n8n that fetches all Superagent data from Peliqan and stores it in Supabase as a vector store, with embeddings created using e.g. OpenAI.

Peliqan data platform

All-in-one Data Platform

Built-in data warehouse, superior data activation capabilities, and AI-powered development assistance.

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