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Better Use cases for Text Embeddings // Vincent Warmerdam // MLOps Coffee Sessions #83

MLOps.community

NOTE

Iterative Model Improvement through Disagreements

Training two models and observing their disagreements is crucial for model improvement; disagreements may indicate bad labels or reveal insights missed by one model. Iterating on model improvements by adding new heuristics and refining rules leads to the development of more accurate versions of both rule-based and deep learning systems, enhancing the model's capability to perform meaningfully in business applications.

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