GroqvsMem0

Full side-by-side comparison — features, pricing, platforms, and which one wins in 2026.

Groq

LLM APIs & Inference

The fastest AI inference platform — LPU-powered, 1000+ tokens/sec

Mem0

AI Agent Frameworks

Memory layer for AI agents — persistent, searchable, context-aware

FeatureGroqMem0
CategoryLLM APIs & InferenceAI Agent Frameworks
PricingFree tier available, pay-per-token for productionFree (open-source), hosted platform available
GitHub Stars
More stars
25k
PlatformsWebLinux, macOS, Docker
Key Features
  • LPU hardware — custom chips for inference, not repurposed GPUs
  • GPT OSS 120B at 500 tok/s ($0.15/M input)
  • GPT OSS 20B at 1000 tok/s ($0.075/M input)
  • Llama 4 Scout 17B at 750 tok/s with 131K context + vision
  • Qwen3-32B at 400 tok/s with 131K context
  • Compound AI systems with web search + code execution
  • Whisper transcription ($0.04-0.11/hour)
  • OpenAI-compatible API — drop-in replacement
  • Free developer tier: 250-300K TPM, 1K RPM
  • Long-term memory
  • User preferences
  • Multi-level memory
  • API
  • Self-improving
Pros
  • + Fastest inference available (500-1000 tok/s)
  • + Free tier with generous limits (250K+ tokens/min)
  • + OpenAI-compatible API — swap one line of code
  • + Latest open-source models (GPT OSS, Llama 4, Qwen3)
  • + Compound AI for agentic workflows (search + code exec)
  • + Drop-in memory for any AI agent
  • + Automatic relevance scoring
  • + Works with any LLM
  • + Both local and hosted options
Cons
  • Cloud-only — cannot self-host LPU hardware
  • Rate limits on free tier (1K RPM)
  • Smaller model catalog than running locally via Ollama
  • Adds complexity to agent architecture
  • Hosted version has usage limits
Tags
inferencefastfreehardware
memoryagentspersonalizationopen-source

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