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AvivK5498
GitHub creator profile

AvivK5498

Repository-level view of 16 collected skills across 5 GitHub repositories, including approximate occupation coverage.

skills collected
16
repositories
5
occupation fields
2
updated
2026-04-07
occupation focus
Major fields detected across this creator.
repository explorer

Repositories and representative skills

#001
The-Claude-Protocol
5 skills17513updated 2026-02-02
31% of creator
#002
My-Claude-Code-Skills
5 skills70updated 2026-01-27
31% of creator
ceo-companion
최고 경영자

Collaborative CEO co-pilot for SaaS strategy sessions. Researches markets, validates ideas, designs UI inspiration boards, and produces a .strategy/ folder that Beads Orchestration consumes for autonomous building. Use as Session 1 before a Beads build session.

2026-01-27
agent-debugger
소프트웨어 개발자

Systematic debugging toolkit for AI agentic workflows in customer support. Use when diagnosing issues with AI agents including wrong responses, tool/function calling problems, conversation loops, stuck states, or performance/latency issues. Works with any framework (LangChain, custom agents, Claude API) and accepts conversation logs, API logs, tool execution logs, and agent configurations.

2026-01-27
agentform
소프트웨어 개발자

Create and debug Agentform AI agent configurations (.af files). Use when: (1) Creating new agentform projects or workflows (2) Debugging agentform syntax errors (3) Adding MCP server integrations (4) Configuring agents, models, policies, or capabilities (5) Writing workflow steps with routing and human approval Agentform is "Infrastructure as Code for AI agents" - declarative .af files define agents, workflows, and policies.

2026-01-27
create-beads-orchestration
소프트웨어 개발자

Bootstrap lean multi-agent orchestration with beads task tracking. Use for projects needing agent delegation without heavy MCP overhead.

2026-01-27
runpod-serverless-builder
네트워크·컴퓨터 시스템 관리자

Build production-ready RunPod serverless endpoints with optimized cold start times. Use when creating or modifying RunPod serverless workers for (1) vLLM-based LLM inference, (2) ComfyUI image/video generation, or (3) custom Python inference. Supports both baked models (fastest cold starts) and dynamic loading (shared models). Generates complete projects including Dockerfiles, worker handlers, startup scripts, and configuration optimized for minimal cold start latency.

2026-01-27
#003
beads-web
2 skills8018updated 2026-01-27
13% of creator
#005
Agentifind
2 skills81updated 2026-01-26
13% of creator
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