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Enterprise AI deployments today are frozen in time. Model capabilities stagnate in production. The problem compounds because companies aren’t static either. Every time your company improves, the model falls further behind. The bottleneck is continual learning. How does a model do something once and improve from feedback? The future... show more
12,871 просмотров • 4 месяцев назад •via X (Twitter)
Комментарии: 3

Archie Sengupta4 месяцев назад
i think @glean @jainarvind is well placed to solve this for the enterprise today, since they already have the infra for continual learning / specific intelligence. maybe a strategic partnership - glean × applied compute would be even cooler.

Rajesh Parikh3 месяцев назад
Agree. Value over next decade accrues to enterprises who deploy systems of learning and not just adopt AI models

Fantopy4 месяцев назад
honestly the continual learning piece is so underrated, most companies just deploy and forget. the model drift is real

