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Observability and Evaluation · Public
genesys
Observability and evaluation project for turning logs, quality metrics, drift, or experiment results into reviewable signals.
Check whether this project matches your task before installing it.
What it can doObservability setup paths, metric boundaries, sample-data redaction, evaluation checks, and failure triageReview the portable capability path.
Before continuingVerify in a sandboxDo not treat a preview pack as a proven local install.
GitHub snapshot16 stars2 forks · 1 contributors
Publication status · 2026-05-25
What is genesys?
- genesys helps developers observe, evaluate, or monitor AI/data application behavior and quality.
- Best fit: Developers who need reviewable observability or evaluation workflows for AI apps, data pipelines, or experiments.
- Not for: Not for users without logs/sample data, privacy boundaries, or those who only need a chat UI.
- Capability added to an AI workflow: Observability setup paths, metric boundaries, sample-data redaction, evaluation checks, and failure triage
- First safe verification step: Verify collection, metric interpretation, export, and deletion paths with redacted sample data first.
- Verification state: source, Quick Start, and sandbox install checks are recorded as passed.
- Top risk: The main risk is sending sensitive logs, user data, or misleading metrics into production observability.
- Evidence base: https://github.com/rishimeka/genesys, https://github.com/rishimeka/genesys#readme, Human Manual, Pitfall Log
01
Quick decision
Use this section to decide whether the project is worth a deeper read.Observability and evaluation project for turning logs, quality metrics, drift, or experiment results into reviewable signals.
16 stars · 2 forks
02
What it can do
Translate the upstream project into concrete capabilities the user can judge before installing.Getting Started with Genesys
Related topics: Configuration Guide, Storage Backend Comparison
Sources: [README.md](https://github.com/rishimeka/genesys/blob/main/README.md)
System Architecture
Related topics: Memory Scoring Engine, Memory Lifecycle Management, Nodes and Edges Data Models
Source: https://github.com/rishimeka/genesys / Human Manual
Memory Scoring Engine
Related topics: Memory Lifecycle Management
Sources: [README.md](https://github.com/rishimeka/genesys/blob/main/README.md)
Memory Lifecycle Management
Related topics: Memory Scoring Engine, Nodes and Edges Data Models
Sources: [src/genesys_memory/engine/transitions.py:1-20]()
Nodes and Edges Data Models
Related topics: Graph Traversal and Causal Reasoning, Storage Provider Implementation
Sources: [src/genesys_memory/models/enums.py](https://github.com/rishimeka/genesys/blob/main/src/genesys_memory/models/enums.py)
Sources: https://github.com/rishimeka/genesys, Human Manual, Project Pack evidence, and downstream validation signals.
03
Community Discussion Evidence
Project-level external discussion stays visible on the detail page, not only inside the manual.Community Discussion Evidence
1 source-linked itemReview these external discussions before using genesys with real data or production workflows. They are review inputs, not standalone proof that the project is production-ready.
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01
Configuration risk needs validation
GitHub / issue
04
How to start
Only source-backed commands are shown here. Verify them in an isolated environment first.Try the prompt first
Test the workflow without installing the upstream project.
previewRead the Human Manual
Understand inputs, outputs, limits, and failure modes.
manualTake context to your AI host
Use the compiled assets in your preferred AI environment.
contextRun sandbox verification
Confirm install commands and rollback before using a primary environment.
verifypip install genesys-memoryOfficial start command · https://github.com/rishimeka/genesys#readme · verified: yes
05
Human Manual
The English page must expose the real manual, not a short placeholder.8+ sections · Human Manual
genesys Manual
Genesys is an intelligence layer for AI memory — a scoring engine, causal graph, and lifecycle manager for AI agent memory. It provides persistent memory capabilities with intelligent forg...
Open the full manual- genesys Human Manual
- Table of Contents
- Getting Started with Genesys
- Related Pages
- Overview
- Architecture Overview
- Memory Lifecycle State Machine
- Memory Scoring Formula
Getting Started with Genesys
Related topics: Configuration Guide, Storage Backend Comparison
Sources: [README.md](https://github.com/rishimeka/genesys/blob/main/README.md)
System Architecture
Related topics: Memory Scoring Engine, Memory Lifecycle Management, Nodes and Edges Data Models
Source: https://github.com/rishimeka/genesys / Human Manual
Memory Scoring Engine
Related topics: Memory Lifecycle Management
Sources: [README.md](https://github.com/rishimeka/genesys/blob/main/README.md)
Memory Lifecycle Management
Related topics: Memory Scoring Engine, Nodes and Edges Data Models
Sources: [src/genesys_memory/engine/transitions.py:1-20]()
Nodes and Edges Data Models
Related topics: Graph Traversal and Causal Reasoning, Storage Provider Implementation
Sources: [src/genesys_memory/models/enums.py](https://github.com/rishimeka/genesys/blob/main/src/genesys_memory/models/enums.py)
06
AI Context Pack and portable assets
After deciding to continue, take the project context into your own AI host.Complete pack plus user-owned assets
These files are planning and verification assets for Claude Code, Codex, Gemini, Cursor, ChatGPT, and other AI hosts.
07
Preflight checks
Treat this page as a planning asset, not proof that your local environment is ready.- The manual is generated from source-linked project files and Doramagic validation signals.
- Community evidence warnings stay visible instead of being converted into marketing claims.
- This English page is indexable because the locale quality gate passed and explicit English index approval is enabled.
- Use the upstream repository as the final authority for installation commands, license, and version-specific behavior.
08
Pitfall Log and verification risks
Doramagic surfaces high-risk items before users treat a candidate capability as verified.Review upstream issue
The source signal needs review before production use.
Review upstream issue
README/documentation is current enough for a first validation pass.
Review upstream issue
The source signal needs review before production use.
Review upstream issue
no_demo
Review upstream issue
no_demo
Review upstream issue
issue_or_pr_quality=unknown。
Review upstream issue
release_recency=unknown。