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Condé Nast implements AI-powered multimodal video discovery with Amazon Bedrock

🔄 Updated 2d ago
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Key points

  • Condé Nast reduced video discovery time from 250 minutes to under 2 minutes.
  • The solution uses Amazon Bedrock and OpenSearch Service.
  • It performs intent-based semantic search across video transcripts, visuals, and audio.
  • The TwelveLabs Marengo embedding model powers the multimodal search.

Addressing Inefficient Video Discovery

Condé Nast's editorial teams previously spent an average of 250 minutes per content discovery task, manually reviewing a library of over 140,000 videos. Their process relied on titles and descriptions, leading to operational inefficiencies and underutilized content that was not discoverable through keyword searches.

AI-Powered Solution Development

To resolve these issues, Condé Nast collaborated with the AWS Generative AI Innovation Center (GenAIIC) to build an AI-powered multimodal video discovery solution. This system is built on Amazon Bedrock and Amazon OpenSearch Service, enabling intent-based semantic search.

Multimodal Semantic Search Capabilities

The new solution integrates video transcripts, visual elements, and audio for comprehensive content discovery. It utilizes the TwelveLabs Marengo embedding model, chosen for its ability to jointly encode visual, audio, and transcript signals, allowing for a deeper understanding of video content beyond simple keywords.

Significant Time Reduction and Impact

The implementation of this AI-powered system has reduced the average content discovery time from 250 minutes to less than 2 minutes per task. This improvement addresses the limitations of traditional keyword search by understanding editorial intent, which is crucial for navigating a large video archive effectively.

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Reporting from

Condé Nast partnered with AWS to develop an AI-powered multimodal video discovery solution using Amazon Bedrock and OpenSearch Service. This system reduces content discovery time from 250 minutes to under 2 minutes per task for its 140,000-video library. The solution addresses the inefficiency of manual video scrubbing and keyword-based searches by enabling intent-based semantic search across video transcripts, visuals, and audio.