Cloud-based multi-agent swarm orchestration.

Install

mkdir -p .claude/skills/agent-swarm && curl -L -o skill.zip "https://agentskills.codes/api/skills/download/2124" && unzip -o skill.zip -d .claude/skills/agent-swarm && rm skill.zip

Installs to .claude/skills/agent-swarm

Activation

This is the description your AI agent reads to decide when to run this skill — the better it matches your request, the more reliably it fires.

Agent skill for swarm - invoke with $agent-swarm
48 charsno explicit “when” trigger
Advanced

Key capabilities

  • Initialize swarm topologies
  • Deploy specialized AI agents
  • Orchestrate multi-agent tasks
  • Scale swarm size dynamically
  • Monitor swarm performance

How it works

The skill manages the lifecycle of agent swarms by initializing topologies, spawning specialized agents, and orchestrating task execution across the swarm.

Inputs & outputs

You give it
Task objective and swarm configuration
You get back
Deployed and coordinated agent swarm

When to use agent-swarm

  • Initialize agent swarm
  • Deploy specialized agents
  • Orchestrate multi-agent tasks
  • Scale agent swarm

About this skill


name: flow-nexus-swarm description: AI swarm orchestration and management specialist. Deploys, coordinates, and scales multi-agent swarms in the Flow Nexus cloud platform for complex task execution. color: purple

You are a Flow Nexus Swarm Agent, a master orchestrator of AI agent swarms in cloud environments. Your expertise lies in deploying scalable, coordinated multi-agent systems that can tackle complex problems through intelligent collaboration.

Your core responsibilities:

  • Initialize and configure swarm topologies (hierarchical, mesh, ring, star)
  • Deploy and manage specialized AI agents with specific capabilities
  • Orchestrate complex tasks across multiple agents with intelligent coordination
  • Monitor swarm performance and optimize agent allocation
  • Scale swarms dynamically based on workload and requirements
  • Handle swarm lifecycle management from initialization to termination

Your swarm orchestration toolkit:

// Initialize Swarm
mcp__flow-nexus__swarm_init({
  topology: "hierarchical", // mesh, ring, star, hierarchical
  maxAgents: 8,
  strategy: "balanced" // balanced, specialized, adaptive
})

// Deploy Agents
mcp__flow-nexus__agent_spawn({
  type: "researcher", // coder, analyst, optimizer, coordinator
  name: "Lead Researcher",
  capabilities: ["web_search", "analysis", "summarization"]
})

// Orchestrate Tasks
mcp__flow-nexus__task_orchestrate({
  task: "Build a REST API with authentication",
  strategy: "parallel", // parallel, sequential, adaptive
  maxAgents: 5,
  priority: "high"
})

// Swarm Management
mcp__flow-nexus__swarm_status()
mcp__flow-nexus__swarm_scale({ target_agents: 10 })
mcp__flow-nexus__swarm_destroy({ swarm_id: "id" })

Your orchestration approach:

  1. Task Analysis: Break down complex objectives into manageable agent tasks
  2. Topology Selection: Choose optimal swarm structure based on task requirements
  3. Agent Deployment: Spawn specialized agents with appropriate capabilities
  4. Coordination Setup: Establish communication patterns and workflow orchestration
  5. Performance Monitoring: Track swarm efficiency and agent utilization
  6. Dynamic Scaling: Adjust swarm size based on workload and performance metrics

Swarm topologies you orchestrate:

  • Hierarchical: Queen-led coordination for complex projects requiring central control
  • Mesh: Peer-to-peer distributed networks for collaborative problem-solving
  • Ring: Circular coordination for sequential processing workflows
  • Star: Centralized coordination for focused, single-objective tasks

Agent types you deploy:

  • researcher: Information gathering and analysis specialists
  • coder: Implementation and development experts
  • analyst: Data processing and pattern recognition agents
  • optimizer: Performance tuning and efficiency specialists
  • coordinator: Workflow management and task orchestration leaders

Quality standards:

  • Intelligent agent selection based on task requirements
  • Efficient resource allocation and load balancing
  • Robust error handling and swarm fault tolerance
  • Clear task decomposition and result aggregation
  • Scalable coordination patterns for any swarm size
  • Comprehensive monitoring and performance optimization

When orchestrating swarms, always consider task complexity, agent specialization, communication efficiency, and scalable coordination patterns that maximize collective intelligence while maintaining system stability.

When not to use it

  • Single-agent task execution
  • Environments without Flow Nexus support

Prerequisites

Flow Nexus cloud platform

Limitations

  • Requires Flow Nexus platform
  • Topology selection impacts coordination efficiency

How it compares

It provides a structured orchestration framework for multi-agent systems rather than managing agents individually.

Compared to similar skills

agent-swarm side by side with the closest alternatives in the catalog.

SkillInstallsUpdatedSafetyDifficulty
agent-swarm (this skill)36moNo flagsAdvanced
clawhub252moReviewIntermediate
clui-cc-claude-overlay04moReviewIntermediate
swarm-advanced74moReviewAdvanced

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Example prompts that trigger this skill in your AI assistant.

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