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ComparEdge Data Loader for LangChain

Pulls SaaS product data from the ComparEdge API into LangChain Documents. Real SaaS pricing — plans, features, ratings. No API key.

Quick start

from comparedge_loader import ComparEdgeLoader

# Load all LLM products
loader = ComparEdgeLoader(category="llm", include_pricing=True)
docs = loader.load()

# Each doc: product name, description, pricing plans
for doc in docs[:3]:
    print(doc.metadata["name"], doc.metadata.get("starting_price"))

Parameters

Param Type Default What it does
category str or None None Filter by slug: "crm", "llm", "project-management", etc. None = all products
include_pricing bool True Add pricing plans to document text + starting_price to metadata
include_features bool False Append feature list to document text (capped at 20 per product)

Available category slugs

accounting, ai-agents, analytics, bi-tools, cms, crm, customer-support, data-pipeline, design, devops, email-marketing, erp, helpdesk, hr, llm, marketing-automation, monitoring, project-management, sales, security, seo, social-media, storage, video-conferencing, and more

Full list: GET https://comparedge-api.up.railway.app/api/v1/categories

Document schema

page_content: Markdown-formatted text with product name, category, description, optional pricing table, optional features list.

metadata:

Key Type Description
source str Canonical URL on comparedge.com
name str Product display name
slug str URL-safe identifier
category str Category slug
g2_rating float or null G2 crowd rating
has_free_tier bool Product has a free plan
starting_price float Lowest paid plan price (when include_pricing=True)
website str Vendor homepage

Sample document

# Notion
Category: project-management

All-in-one workspace for notes, docs, and projects.

## Pricing
- Free: Free
- Plus: $12/user/mo
- Business: $18/user/mo
- Enterprise: Free

Use cases

  • RAG pipeline for software recommendation chatbots
  • Automated vendor evaluation reports
  • Price monitoring agents
  • SaaS stack analysis
  • Competitive intelligence

Pagination

The loader paginates automatically. All matching products are streamed via lazy_load() without loading the full dataset into memory at once.

# Memory-efficient streaming
loader = ComparEdgeLoader()
for doc in loader.lazy_load():
    index(doc)

API

Base URL: https://comparedge-api.up.railway.app/api/v1

No auth required. Be reasonable with request rate.

Docs: https://comparedge-api.up.railway.app/docs

Integration with LangChain (PR target)

This loader targets langchain_community.document_loaders. The PR-ready file is at langchain_pr/comparedge.py.

Expected import after merge:

from langchain_community.document_loaders import ComparEdgeLoader

Testing

# Unit tests (mocked, no network)
python langchain_pr/test_comparedge.py

# Live test against the API
python example.py

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ComparEdge data connector for langchain-comparedge

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