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Loopany platform

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I was building loops wrong... thumbnail

· 14:07

I was building loops wrong...

The video details the architecture and implementation of 'loops'—autonomous AI systems designed for continuous development and operations. These loops move beyond simple agent prompting by establishing a structured system where an agent can independently decide on work, execute tasks, verify results, and self-improve over time. The core structure involves defining a Loop Contract (Goal, Boundaries, SOP), maintaining State/Logs, utilizing specific Trigger mechanisms, and employing multi-role agents with mandatory verification steps.

Key takeaways

  1. The Anatomy of an AI Loop 3:30

    Every internal loop is structured around a markdown file containing the 'Loop Contract' (Goal, Boundaries, SOP), 'State' (current hypothesis/backlogs), and 'Logs' (append-only record). This serves as the living documentation for the system.

  2. Advanced Trigger Mechanisms 6:30

    Beyond standard continuous (`while` loop) or cron job triggers, effective loops often use 'Event-based' (reactive to external events like new emails/incidents) or 'Combo/Workflow' triggers. The latter is highly efficient as it programmatically checks data sources (e.g., Intercom updates) before waking the agent, preventing unnecessary runs.

  3. The Evolve Loop Concept 10:30

    Loops are designed to improve themselves. An 'Evolve Loop' is a dedicated session where the AI analyzes its own past run state, logs, and configuration to suggest improvements—such as optimizing triggers or refining the SOP—making the system self-optimizing.

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