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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.

PromptLayer logo
PromptLayer
✓ verifiedFree

Prompt engineering, management, and LLM observability platform.

212K visits/mo
AI or Not logo
AI or Not
✓ verifiedFreemium

AI or Not detects AI-generated and deepfake images, video, audio and text via API with a claimed 98.9% accuracy.

240K visits/mo2.9K saves
Jina AI logo
Jina AI
✓ verifiedFreemium

Developer API suite (Reader, Embeddings, Reranker) that turns web content into LLM-ready data for search and RAG.

483K visits/mo18K saves
qdrant.io logo
qdrant.io
✓ verifiedFreemium

High-performance open-source vector database for production AI retrieval and RAG, for teams needing scale, hybrid search, or self-hosting.

166K visits/mo
supermemory™ logo
supermemory™
✓ verifiedFreemium

Developer API that gives AI agents persistent memory, retrieval, and connectors, usable both as infrastructure and a personal app.

174K visits/mo
Pricing

No public pricing

Free: $0 ($5 in credits, 1M words + 20 image checks)
Pro: $5/mo ($10 credits/mo)

No public pricing

No public pricing

Free: $0/mo (~$5/mo of usage included)
Pro: $19/mo (~$20/mo of usage, unlimited storage, 2 teammates)
Max: $100/mo (~$130/mo of usage, 6x Pro headroom)
Scale: $399/mo (~$600/mo of usage, up to 10 teammates)
Core features
  • Prompt management
  • Prompt evaluations
  • LLM observability
  • Team collaboration
  • Version control for prompts
  • A/B testing of prompts
  • Prompt Registry
  • Historical backtests
  • Regression tests
  • Usage monitoring
  • AI image, video, audio and text detection
  • Deepfake detection
  • Detection API with key included
  • Per-use credits across all modalities
  • Model-level breakdown of results
  • Enterprise/on-prem and reseller options
  • Reader API converts URLs to Markdown
  • Multimodal multilingual embedding models
  • Reranker for stronger search relevance
  • Web search endpoint returning SERP data
  • MCP server for use inside LLMs
  • Native inference inside Elasticsearch
  • Hybrid dense and sparse vector search (BM25, SPLADE, miniCOIL)
  • Advanced metadata filtering applied during search traversal
  • Multivector support for multimodal retrieval
  • Reranking with score boosting and late-interaction models (ColBERT, MMR)
  • Flexible deployment: cloud, hybrid, private, or edge
  • Rust-based engine optimized for low-latency, high-scale search
  • Persistent, structured memory built as a knowledge graph
  • Sub-300ms hybrid retrieval (RAG) with reranking
  • Native filesystem mount for agent memory access
  • Connectors to Slack, Notion, Drive, Gmail, GitHub, S3
  • Automatic extraction from PDFs, images, and audio
  • User profile and behavior tracking across sessions
Use cases
  • Scaling customer support automation with LLMs
  • Empowering non-technical teams with prompt engineering
  • Building personalized AI interactions
  • Debugging LLM agents
  • Improving content creation processes
  • Managing and monitoring prompts with a team
  • Verify whether media is AI-generated
  • Screen content for deepfakes
  • Integrate AI detection into workflows via API
  • Ground LLMs with clean web content
  • Build semantic and RAG search
  • Rerank retrieved results
  • Give AI agents live web access
  • Building retrieval-augmented generation (RAG) pipelines
  • Powering AI recommendation and semantic search systems
  • Enterprises needing on-prem or hybrid deployment for compliance
  • AI agent platforms needing fast contextual retrieval at scale
  • Developers adding long-term memory to AI agents
  • Teams building agents that need to sync with existing tools
  • Individuals wanting one memory layer shared across multiple AI assistants
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