Video Has No Memory. Here's How We Built One.
Official Schedule Context
- Date/time: 2026-07-01 · 2:25pm-2:45pm
- Track/room: Graphs · Track 5
- Speaker(s): James Le
- Session type/status: sponsor · confirmed
Official Description
Every video AI query today starts from scratch. There's no durable state, no entity continuity, no
way to ask "what does this corpus know?" instead of "find me something like this." This talk is
about fixing that by engineering a proper memory layer for video intelligence, grounded in what we
shipped at TwelveLabs with Jockey. What this talk covers: 1 - Why video memory is categorically
different from text memory: Video is temporal, multimodal, dense, ambiguous, and evidence-sensitive.
Larger context windows don't solve this. The problem isn't retrieval bandwidth, it's that there's no
durable representation to retrieve into. 2 - The context graph as a systems concept, not a database
choice: I'll define what "context graph" actually means in practice: time-bounded moments, cross-
video entity resolution, appearance tracking, and relationship mapping. This is infrastructure-level
thinking, not a graph DB sales pitch. 3 - Five design principles that determine whether video
intelligence is reusable infrastructure or a search wrapper with extra steps: + Ingest once, reason
many times (move expensive understanding work into preparation) + Store primitives, not just answers
(moments, entities, appearances, relationships) + Ground every claim to source video (a timestamp is
a product requirement, not a safety footnote) + Let intent shape memory (brand safety and sports
highlights need different primitives from the same footage) + Keep the memory layer composable and
API-first 4 - What this unlocks for builders. Corpus digest, agentic search with grounded
references, entity-centric workflows, timeline reconstruction, and compliance tooling, all built on
the same durable substrate. The talk is concrete and demo-grounded. You'll leave with a specific
mental model for memory architecture, actionable decisions for ingestion pipeline design and entity
resolution, and a clear line between "search with extra steps" and actual video intelligence
infrastructure.
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