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JEST-L++

Training compute
2×10²¹ FLOP
Published
Jun 25, 2024

JEST-L++ is an AI model developed by DeepMind (United Kingdom), first published in June 2024. It works in the vision domain, on tasks such as image classification.

Training it took an estimated 2×10²¹ FLOP of compute. It was trained on roughly 98.3T datapoints. Training ran on 256 Google TPU v5e.

Access: Unreleased. Its weights are not openly released. The reference paper has 30 citations. Epoch AI rates the confidence of this record as confident.

Full record
Organization
DeepMind
Country of organization
United Kingdom
Domain
Vision
Task
Image classification
Training compute
2×10²¹ FLOP
Dataset size
98.3T
Training hardware
Google TPU v5e
Chips used
256
Training power draw
113.7 kW
Model accessibility
Unreleased
Open weights
No
Citations
30
Epoch confidence
Confident
More from DeepMind
SourceEpoch AI, 'AI Models'. Published online at epoch.ai. Retrieved 2026-07-29 from https://epoch.ai/data/ai-models. Licensed under CC BY 4.0.
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