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agent-builder

Design and build AI agents for any domain. Use when users: (1) ask to "create an agent", "build an assistant", or "design an AI system" (2) want to understand agent architecture, agentic patterns, or autonomous AI (3) need help with capabilities, subagents, planning, or skill mechanisms (4) ask about Claude Code, Cursor, or similar agent internals (5) want to build agents for business, research, creative, or operational tasks Keywords: agent, assistant, autonomous, workflow, tool use, multi-step, orchestration

DeepseekModel Curated skill Quality Excellent · 90 v1.0.0

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https://deepseekmodel.com/api/download.php?id=shareai-lab-learn-claude-code-skills-agent-builder-skill-md&format=skill
Download .skill Standard format with system_prompt and model_config, ready for any agent framework
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name agent-builder description Design and build AI agents for any domain. Use when users: (1) ask to "create an agent", "build an assistant", or "design an AI system" (2) want to understand agent architecture, agentic patterns, or autonomous AI (3) need help with capabilities, subagents, planning, or skill mechanisms (4) ask about Claude Code, Cursor, or similar agent internals (5) want to build agents for business, research, creative, or operational tasks Keywords: agent, assistant, autonomous, workflow, tool use, multi-step, orchestration Agent Builder Build AI agents for any domain - customer service, research, operations, creative work, or specialized business processes. The Core Philosophy The model already knows how to be an agent. Your job is to get out of the way. An agent is not complex engineering. It's a simple loop that invites the model to act: LOOP: Model sees: context + available capabilities Model decides: act or respond If act: execute capability, add result, continue If respond: return to user That's it. The magic isn't in the code - it's in the model. Your code just provides the opportunity. The Three Elements 1. Capabilities (What can it DO?) Atomic actions the agent can perform: search, read, create, send, query, modify. Design principle : Start with 3-5 capabilities. Add more only when the agent consistently fails because a capability is missing. 2. Knowledge (What does it KNOW?) Domain expertise injected on-demand: policies, workflows, best practices, schemas. Design principle : Make knowledge available, not mandatory. Load it when relevant, not upfront. 3. Context (What has happened?) The conversation history - the thread connecting actions into coherent behavior. Design principle : Context is precious. Isolate noisy subtasks. Truncate verbose outputs. Protect clarity. Agent Design Thinking Before building, understand: Purpose : What should this agent accomplish? Domain : What world does it operate in? (customer service, research, operations, creative...) Capabilities : What 3-5 actions are essential? Knowledge : What expertise does it need access to? Trust : What decisions can you delegate to the model? CRITICAL : Trust the model. Don't over-engineer. Don't pre-specify workflows. Give it capabilities and let it reason. Progressive Complexity Start simple. Add complexity only when real usage reveals the need: Level What to add When to add it Basic 3-5 capabilities Always start here Planning Progress tracking Multi-step tasks lose coherence Subagents Isolated child agents Exploration pollutes context Skills On-demand knowledge Domain expertise needed Most agents never need to go beyond Level 2. Domain Examples Business : CRM queries, email, calendar, approvals Research : Database search, document analysis, citations Operations : Monitoring, tickets, notifications, escalation Creative : Asset generation, editing, collaboration, review The pattern is universal. Only the capabilities change. Key Principles The model IS the agent - Code just runs the loop Capabilities enable - What it CAN do Knowledge informs - What it KNOWS how to do Constraints focus - Limits create clarity Trust liberates - Let the model reason Iteration reveals - Start minimal, evolve from usage Anti-Patterns Pattern Problem Solution Over-engineering Complexity before need Start simple Too many capabilities Model confusion 3-5 to start Rigid workflows Can't adapt Let model decide Front-loaded knowledge Context bloat Load on-demand Micromanagement Undercuts intelligence Trust the model Resources Philosophy & Theory : references/agent-philosophy.md - Deep dive into why agents work Implementation : references/minimal-agent.py - Complete working agent (~80 lines) references/tool-templates.py - Capability definitions references/subagent-pattern.py - Context isolation Scaffolding : scripts/init_agent.py - Generate new agent projects The Agent Mindset From : "How do I make the system do X?" To : "How do I enable the model to do X?" From : "What's the workflow for this task?" To : "What capabilities would help accomplish this?" The best agent code is almost boring. Simple loops. Clear capabilities. Clean context. The magic isn't in the code. Give the model capabilities and knowledge. Trust it to figure out the rest.
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The downloaded .skill package contains the following fields.
Field Description
formatFormat tag (skill/v1)
skill_idUnique skill ID
nameSkill name
versionVersion
descriptionDescription
categoryCategories (array)
trigger_wordsTrigger words
tagsTags
sourceSource
source_urlSource URL (this page)
exported_atExported at (set per download)
system_promptSystem prompt body
model_configModel config: provider / model / temperature / max_tokens / top_p
examplesExamples
install_guideImport guide for Coze / Dify / Claude / custom frameworks
The same skill can be exported in different platform formats.
.skill Standard format with system_prompt and model_config, ready for any agent framework Download
.skillpro Enhanced format with scripts, tools, dependencies and hooks Download
.json Plain JSON export with system_prompt and model parameters only Download
Coze Markdown with frontmatter, for Coze platform import Download
Dify Dify DSL, import directly after creating an app Download

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