Agentic AI Explained: AI That Plans, Acts, and Learns
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About this listen
What happens when AI stops waiting for instructions… and starts pursuing your goals?
In this episode of The AI Storm Podcast, Krishna Goli explores the rise of Agentic AI — systems that can plan, act, reflect, and collaborate with minimal supervision. From autonomous debugging to multi-agent teams that produce full strategic documents, this episode dives deep into the moment where AI shifts from answering to accomplishing.
You’ll hear real stories of agents solving problems end-to-end, understand the architecture behind their reasoning loops, and learn the practical challenges — cost, brittleness, looping, and the gap between what you say and what the agent interprets.
We also look at everyday-life examples:
- Agents fixing broken flows while you’re in a meeting
- Tools like Devin, OpenDevin, LangGraph, AutoGen, and CrewAI already working in the real world
- Personal agents reshaping your schedule, drafting emails, and preparing talking points
- Small-business automations running customer workflows end-to-end
In this episode, you’ll discover:
- What makes an AI system truly “agentic”
- How agents reason using observe–plan–act–reflect loops
- Real examples from engineering, research, productivity, and small businesses
- Why autonomy introduces risk — and how to manage it
- What happens when multiple agents collaborate
- How leaders should prepare for the age of autonomous workflows
Try this tonight:
Pick one workflow you repeat each week — weekly reports, lead qualification, or bug triage — and run it with an AI agent for two weeks. If you’re technical, try LangGraph or CrewAI; if not, start with the agent features inside your CRM or helpdesk.
After a week, ask: Where did it save you time? Where did it surprise you? Where did it make you nervous?
Agentic AI isn’t the future of automation.
It’s the future of collaboration.