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Side-by-side features, use cases and pricing — because the right pick depends on your job and budget, not just the ranking.

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✓ verifiedFreemium

Open-source AI coding assistant offering autocomplete and chat in IDEs; the company was acquired by Cursor.

775K visits/mo

Thin 'Lingbot-map' agent listing on github.com with zero traffic; too thin to tell.

5.2K saves
Watsonx.data logo
Watsonx.data
✓ verifiedFree trial

IBM's open, hybrid data lakehouse that connects, governs and optimizes enterprise data to make it AI-ready across clouds and on-premises.

1.5M visits/mo
122K visits/mo
Pricing

No public pricing

No public pricing

No public pricing

Free trial available

Free Plan: $0 one-time
Hobby: $16/month
Standard: $83/month
Growth: $333/month
Auto Recharge Credits: $11/mo for 1000 credits
Credit Pack: $9/mo for 1000 credits
Enterprise Plan: Contact for Pricing

No public pricing

Core features
  • Open-source AI code assistant
  • Customizable autocomplete
  • In-editor AI chat
  • Community-built coding agent
  • Fast tensor operations
  • Differentiable tensors for gradient-based optimization
  • Network connectivity
  • Integration with Bun and Flashlight
  • Support for GPU computation with CUDA (Linux) and CPU computation (macOS)
  • Open hybrid data lakehouse
  • Connects data across clouds and on-prem
  • Governance, lineage and access controls
  • Business-context enrichment
  • AI-ready data for analytics and models
  • Web scraping
  • Web crawling
  • Data extraction in Markdown, JSON, and screenshot formats
  • Dynamic content handling
  • Rotating proxies
  • Rate limits management
  • Open-source availability
  • Media Parsing
  • Visual bug reporting
  • AI-powered customer support (Kai)
  • Public roadmaps
  • Knowledge base
  • Surveys
  • Marketing automation
  • Live chat
  • Custom chatbots
Use cases
  • Get AI code completions while coding
  • Ask questions about code in the editor
  • Build on an open-source coding-agent foundation
  • Creating and manipulating datasets
  • Training small machine learning models
  • Implementing advanced training and inference logic
  • Building applications that require tensor computations
  • Unifying fragmented enterprise data
  • Governing data for AI workloads
  • Moving AI pilots to production
  • Powering analytics with trusted data
  • Powering AI assistants with real-time web content
  • Enhancing sales data with web information
  • Adding scraping capabilities to code editors
  • Enabling customers to build AI apps with web data
  • Extracting comprehensive information for in-depth research
  • Fix bugs faster with visual feedback.
  • Improve customer satisfaction with AI-powered support.
  • Manage feature requests and let users vote on suggestions.
  • Drive customer engagement with targeted outreach.
  • Create custom chatbots for sales, marketing, and support.
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