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Booking.com Doubles AI Accuracy with Hybrid Strategy
8 Dec
Summary
- Booking.com uses a layered AI model approach for efficiency and accuracy.
- Personalized filters and conversational AI enhance customer experience.
- The company prioritizes reversible AI decisions to avoid future lock-in.

Booking.com has strategically developed an agentic AI infrastructure, moving beyond mere experimentation to a refined, layered approach. By integrating small, efficient models for quick tasks with larger LLMs for complex reasoning, and employing domain-tuned evaluations, they've seen accuracy double across key functions. This modular strategy also allows for selective collaboration with external AI partners.
The company is leveraging this AI advancement to deepen personalization without compromising user privacy. Innovations include a conversational recommendation system and personalized filtering, which respond to customer needs in their own words. This focus on understanding user intent and preferences aims to build loyalty through improved customer service.
Navigating the evolving AI landscape, Booking.com emphasizes making reversible decisions, avoiding rigid, long-term commitments. Their approach prioritizes generalizing where possible, specializing where necessary, and maintaining flexibility to adapt to future technological shifts and industry trends.




