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Agents

Agents that delegate to agents.

Parallel subagents, isolated context, full observability.

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Why bother splitting?

A smart agent plans the work, smaller ones do the parts. It usually costs less and finishes in about the same time.

Plan once

The lead agent figures out the steps so each helper has one clear job.

Smart leader, simple helpers

Use a top model for the thinking. Use cheaper models for the busywork.

See every step

Each helper's work is visible. Open any of them to read what it did and why.

Same voice all the way through

The helpers inherit how you've trained the main agent: its tone, what it remembers, what skills it knows about. The answer comes back sounding like the same agent, not five different ones stitched together.

What you get

Parallel by default

Fan out N subagents at once. Each gets its own conversation, its own model, its own context.

Cheap-worker pattern

Run an expensive orchestrator that delegates to cheap workers. Cuts cost without losing capability.

Inherited identity

Subagents inherit the parent agent's voice, memory, and skills unless you override.

Observable end-to-end

Every subagent run is a node in the trace. Open any one to see what it did and why.

Who it's for

Researchers

Orchestrator agent fans out 8 subagents to skim 8 papers in parallel; aggregates findings on return.

Developers

Code-review orchestrator spawns one subagent per file; results merged into one review comment.

How it works

  1. 1
    Enable subagent skill

    Tick subagent in the agent's skill list.

  2. 2
    Describe the work

    The orchestrator decides how to split it across subagents.

  3. 3
    Watch them run

    The trace shows every subagent's prompt, model, output, and cost.

Frequently asked

Hand off a chunky task.

Watch one agent break it down and the helpers finish in parallel.

Try itRead the docs

Read the docs

  • Subagent delegation

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