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Skill

pydantic-ai-harness

extend Pydantic AI agents with capabilities

Covers Pydantic Python Agents Code Execution

Description

Extend Pydantic AI agents with batteries-included capabilities from pydantic-ai-harness -- Code Mode (collapse many tool calls into one sandboxed Python execution), a filesystem and shell, sub-agents, planning, context compaction, and more. Use when the user mentions pydantic-ai-harness, CodeMode, Monty, code mode, or tool sandboxing, when they want first-party filesystem/shell/sub-agent/planning/compaction capabilities for a Pydantic AI agent, when they want an agent to run agent-written Python, or when a Pydantic AI agent would benefit from orchestrating multiple tool calls in a single sandboxed script.

SKILL.md

Building with Pydantic AI Harness

Pydantic AI Harness is the official capability library for Pydantic AI. Capabilities that need model or framework support -- and those fundamental to every agent -- live in core pydantic-ai; optional, batteries-included capabilities live here. Both are composed onto an agent through the same capabilities=[...] API.

This skill covers the capabilities shipped by pydantic-ai-harness. For the core framework -- agents, tools, structured output, hooks, and testing -- use the building-pydantic-ai-agents skill instead.

When to Use This Skill

Invoke this skill when:

  • The user mentions pydantic-ai-harness, CodeMode, code mode, or the Monty sandbox
  • An agent makes many sequential tool calls that could collapse into one sandboxed Python execution
  • The user wants the model to write Python that loops, branches, aggregates, or parallelizes tool calls with asyncio.gather
  • The user asks to sandbox or constrain the code an agent runs

Do not use this skill for:

  • Core Pydantic AI usage -- building agents, adding tools, structured output, streaming, or testing (use building-pydantic-ai-agents)
  • Capabilities that ship in core pydantic-ai, such as web search, tool search, and thinking
  • The Pydantic validation library on its own (pydantic/BaseModel without agents)

Supported Capabilities

CodeMode has a full reference below; it is the flagship capability and the one this skill goes deep on. The rest ship today and each has its own README with API and examples.

Each capability lives in its own submodule and is imported from there (from pydantic_ai_harness.<module> import ...). Capabilities are not importable from the top-level pydantic_ai_harness package by design, so each one keeps its own optional dependencies isolated. CodeMode, FileSystem, Shell, and ManagedPrompt also have top-level re-exports (importable directly from pydantic_ai_harness).

APIs are subject to change between releases; breaking changes ship deprecation warnings where practical.

CapabilityModuleDescription
CodeModepydantic_ai_harness.code_mode (also top-level)Wraps eligible tools into a single sandboxed run_code tool so the model orchestrates them in Python -- see Code Mode
FileSystempydantic_ai_harness.filesystem (also top-level)Read, write, edit, and search files under a root directory, with traversal prevention
Shellpydantic_ai_harness.shell (also top-level)Run commands in a subprocess with allowlists, a default denylist, timeouts, and env masking
ManagedPromptpydantic_ai_harness.logfire (also top-level)Back an agent's instructions with a Logfire-managed prompt
SubAgentspydantic_ai_harness.subagentsDelegate subtasks to specialized child agents
DynamicWorkflowpydantic_ai_harness.dynamic_workflowOrchestrate sub-agents from a model-written Python script
Planningpydantic_ai_harness.planningBreak complex tasks into structured plans before execution
compaction family (SlidingWindowCompaction, SummarizingCompaction, ...)pydantic_ai_harness.compactionTrim or summarize conversation history to stay within token limits
ToolOutputLimitspydantic_ai_harness.tool_output_limitsTruncate, summarize, or spill large tool outputs
RepoContextpydantic_ai_harness.repo_contextAuto-load CLAUDE.md/AGENTS.md and repo structure
StepPersistencepydantic_ai_harness.step_persistenceSave, restore, resume, and fork run state
PydanticAIDocspydantic_ai_harness.pydantic_ai_docsOn-demand read_pyai_docs tool for Pydantic AI docs
CapabilityCreationpydantic_ai_harness.capability_creationLet an agent author, validate, and load real capabilities at runtime
media externalizationpydantic_ai_harness.mediaOffload large BinaryContent to content-addressed stores

Still experimental: an ACP server adapter, imported from pydantic_ai_harness.experimental.acp. Importing it emits a HarnessExperimentalWarning.

The full, current list with links and status is in the capability matrix.

Install

uv add pydantic-ai-harness

Each capability declares its own extra. Code Mode needs the Monty sandbox:

uv add "pydantic-ai-harness[codemode]"   # `code-mode` is also accepted as an alias

Requires Python 3.10+ and pydantic-ai-slim>=2.18.0.

Quick Start

A harness capability is added to the agent like any other. Here CodeMode wraps locally registered tools into a single run_code tool that the model drives with Python.

from pydantic_ai import Agent

from pydantic_ai_harness import CodeMode

agent = Agent('anthropic:claude-sonnet-4-6', capabilities=[CodeMode()])


@agent.tool_plain
def get_temperature_f(city: str) -> float:
    return {'Paris': 68.0, 'Tokyo': 77.0}[city]


@agent.tool_plain
def convert_temp(fahrenheit: float) -> float:
    return round((fahrenheit - 32) * 5 / 9, 1)

result = agent.run_sync(
    'Compare the weather in Paris and Tokyo, and report both temperatures in Celsius.'
)
print(result.output)
#> Paris is 20.0 C and Tokyo is 25.0 C.

The model writes a single Python script that fetches both temperatures with asyncio.gather and then converts them -- performing four tool calls across two dependent stages in one run_code invocation.

Key Practices

  • Confirm a harness capability is actually needed. If core Pydantic AI tools and capabilities are enough, use the building-pydantic-ai-agents skill instead -- don't reach for the harness by default.
  • Read the reference before writing code. Each capability has its own configuration, constraints, and gotchas -- load the linked reference (e.g. Code Mode) first.
  • Install the capability's extra. Importing CodeMode without pydantic-ai-harness[codemode] raises an ImportError; the Monty sandbox is an optional dependency.

Common Gotchas

  • native=True tools bypass CodeMode. Provider-native MCP servers and web search execute server-side, so run_code never sees them. Use native=False for client-side dispatch that CodeMode can wrap, but do not treat a remote server as trusted or sandboxed; see the Code Mode trust boundary.
  • The Monty sandbox is a Python subset. It has no third-party imports and only a small stdlib allowlist -- read Code Mode before debugging generated code that fails to run.
  • CodeMode needs its extra. Install pydantic-ai-harness[codemode], not the bare package.

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