FREE — God-tier long-context memory for AI agents. Injects 500K-1M clean tokens, auto-summarizes with tone/intent preservation, compresses 14-turn history into 800 tokens.
Scanned 9/3/2026
Install to Claude Code
npx -y skills add sickn33/agentic-awesome-skills --skill recallmax --agent claude-codeInstalls into .claude/skills of the current project.
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---
name: recallmax
description: "FREE — God-tier long-context memory for AI agents. Injects 500K-1M clean tokens, auto-summarizes with tone/intent preservation, compresses 14-turn history into 800 tokens."
category: memory
risk: safe
source: community
date_added: "2026-03-13"
author: christopherlhammer11-ai
tags: [memory, context, rag, summarization, compression, long-context, agent-infrastructure]
tools: [claude, cursor, codex, gemini, copilot, windsurf, antigravity, grok]
---
# RecallMax — God-Tier Long-Context Memory
## Overview
RecallMax enhances AI agent memory capabilities dramatically. Inject 500K to 1M clean tokens of external context without hallucination drift. Auto-summarize conversations while preserving tone, sarcasm, and intent. Compress multi-turn histories into high-density token sequences.
Free forever. Built by the Genesis Agent Marketplace.
## Install
```bash
npx skills add christopherlhammer11-ai/recallmax
```
## When to Use This Skill
- Use when your agent loses context in long conversations (50+ turns)
- Use when injecting large RAG/external documents into agent context
- Use when you need to compress conversation history without losing meaning
- Use when fact-checking claims across a long thread
- Use for any agent that needs to remember everything
## How It Works
### Step 1: Context Injection
RecallMax cleanly injects external context (documents, RAG results, prior conversations) into the agent's working memory. Unlike naive concatenation, it:
- Deduplicates overlapping content
- Preserves source attribution
- Prevents hallucination drift from context pollution
### Step 2: Adaptive Summarization
As conversations grow, RecallMax automatically summarizes older turns while preserving:
- **Tone** — sarcasm, formality, urgency
- **Intent** — what the user actually wants vs. what they said
- **Key facts** — numbers, names, decisions, commitments
- **Emotional register** — frustration, excitement, confusion
### Step 3: History Compression
Compress a 14-turn conversation history into ~800 high-density tokens that retain full semantic meaning. The compressed output can be re-expanded if needed.
### Step 4: Fact Verification
Built-in cross-reference checks for controversial or ambiguous claims within the conversation context. Flags contradictions and unsupported assertions.
## Best Practices
- ✅ Use RecallMax at the start of long-running agent sessions
- ✅ Enable auto-summarization for conversations beyond 20 turns
- ✅ Use compression before hitting context window limits
- ✅ Let the fact verifier run on high-stakes outputs
- ❌ Don't inject unvetted external content without dedup
- ❌ Don't skip summarization and rely on raw truncation
## Related Skills
- `@tool-use-guardian` - Tool-call reliability wrapper (also free from Genesis Marketplace)
## Links
- **Repo:** https://github.com/christopherlhammer11-ai/recallmax
- **Marketplace:** https://genesis-node-api.vercel.app
- **Browse skills:** https://genesis-marketplace.vercel.app
## Limitations
- Use this skill only when the task clearly matches the scope described above.
- Do not treat the output as a substitute for environment-specific validation, testing, or expert review.
- Stop and ask for clarification if required inputs, permissions, safety boundaries, or success criteria are missing.
Is this your skill, or is something wrong with this listing? Request removal or report an issue. Author removals are honored within 72 hours.
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