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All issuesVolume 340, Issue 4IT Vendor NewsAkamai Technologies

Why Taste Matters: Building Real-Time Recommendation Systems With AI

Akamai Technologies, Monday, July 20th, 2026

Akamai explains how edge inference keeps AI recommendation systems fresh using real-time session data.

Akamai explores how modern recommendation engines convert content and user behavior into vectors in a shared space, estimating preferences from interaction history while representing articles as semantic embeddings.

Batch processing gives a reliable baseline but grows stale as interests shift and new content arrives.

The solution is deploying inference at the network edge to refine recommendations using real-time session data without waiting for centralized processing. The takeaway: infrastructure speed matters as much as algorithmic accuracy, since a technically accurate recommendation can still feel stale if it arrives too late.

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