Google Expands Gemini API File Search to Multimodal RAG
Original: Gemini API File Search is now multimodal View original →
Overview
Google has announced an expansion of the Gemini API File Search tool to support multimodal retrieval-augmented generation (RAG). The update enables developers to build search systems that work across text, images, audio, and video files.
Key Features
- Multimodal file retrieval: Search across diverse file types including images, audio clips, and video content.
- Verifiable responses: Search results include source attribution so applications can surface grounding evidence for AI-generated answers.
- Token efficiency: Rather than loading entire documents into the context window, File Search retrieves only relevant chunks, reducing costs and latency.
Developer Impact
The update lowers the barrier for building enterprise RAG applications that go beyond text. Developers working on document intelligence, media libraries, or knowledge management systems can now incorporate images and audio into their Gemini-powered search pipelines. Google frames this as part of a broader push to make the Gemini API a platform for production-grade AI applications with measurable quality and reliability.
Related Articles
Google said on March 26, 2026 that Search Live is expanding to every language and country where AI Mode is already available. The rollout reaches more than 200 countries and territories and uses Gemini 3.1 Flash Live to make search more conversational, voice-first, and camera-aware.
Why it matters: retrieval stacks are being pulled from text-only search into multimodal memory. Google AI Studio said Gemini Embedding 2 is generally available and covers text, image, video, audio, and documents through one model path.
Google DeepMind has shared the progress of AlphaEvolve, its Gemini-powered coding agent, which has spent the past year discovering and improving algorithms across quantum computing, biotechnology, logistics, and Google's own AI infrastructure.
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