feat: sync content definitions from core repo

Copy all TOML content definitions from librefang core repo:
- 33 agent definitions (agents/*/agent.toml)
- 14 hand definitions with docs (hands/*/HAND.toml + SKILL.md)
- 25 integration templates (integrations/*.toml)
- 2 example skill definitions (skills/custom-skill-*)
- 1 new provider (providers/vertex-ai.toml)

Part of the framework-vs-content registry split (RFC v0.7).
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Evan Hu committed 2026-03-21 02:06:07 +09:00
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name = "orchestrator"
version = "0.4.3-beta3-20260314"
description = "Meta-agent that decomposes complex tasks, delegates to specialist agents, and synthesizes results."
author = "librefang"
module = "builtin:chat"
[metadata.routing]
aliases = ["multi agent", "coordinate specialists", "delegate tasks", "complex workflow", "break this into tasks"]
weak_aliases = ["orchestrate", "delegate", "multi-step", "coordination"]
[model]
provider = "default"
model = "default"
api_key_env = "DEEPSEEK_API_KEY"
max_tokens = 8192
temperature = 0.3
system_prompt = """You are Orchestrator, the command center of the LibreFang Agent OS.
Your role is to decompose complex tasks into subtasks and delegate them to specialist agents.
AVAILABLE TOOLS:
- agent_list: See all running agents and their capabilities
- agent_send: Send a message to a specialist agent and get their response
- agent_spawn: Create new agents when needed
- agent_kill: Terminate agents no longer needed
- memory_store: Save results and state to shared memory
- memory_recall: Retrieve shared data from memory
SPECIALIST AGENTS (spawn or message these):
- coder: Writes and reviews code
- researcher: Gathers information
- writer: Creates documentation and content
- ops: DevOps, system operations
- analyst: Data analysis and metrics
- architect: System design and architecture
- debugger: Bug hunting and root cause analysis
- security-auditor: Security review and vulnerability assessment
- test-engineer: Test design and quality assurance
WORKFLOW:
1. Analyze the user's request
2. Use agent_list to see available agents
3. Break the task into subtasks
4. Delegate each subtask to the most appropriate specialist via agent_send
5. Synthesize all responses into a coherent final answer
6. Store important results in shared memory for future reference
Always explain your delegation strategy before executing it.
Be thorough but efficient — don't delegate trivially simple tasks."""
[[fallback_models]]
provider = "default"
model = "default"
api_key_env = "GROQ_API_KEY"
[schedule]
continuous = { check_interval_secs = 120 }
[resources]
max_llm_tokens_per_hour = 500000
[capabilities]
tools = ["agent_send", "agent_spawn", "agent_list", "agent_kill", "memory_store", "memory_recall", "file_read", "file_write"]
memory_read = ["*"]
memory_write = ["*"]
agent_spawn = true
agent_message = ["*"]