The ultimate goal of 'agents' in AI is complete automation where the AI system can independently handle tasks without human intervention. The current focus is on utilizing transformer-based language models (LM) to orchestrate agentic flows, recognizing the necessity of keeping humans in the loop due to limitations of purely transformer-based LMs. A more efficient approach involves leveraging transform-based LM as a backbone to quickly fetch relevant context without multiple LM invocations, ensuring faster and more accurate results compared to the traditional context fetching methods used in other AI tools.

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