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Decode Trail Latest Questions

Asked: January 1, 20262026-01-01T06:27:03+00:00 2026-01-01T06:27:03+00:00In: MLOps

How do I prevent training–serving skew in ML systems?

Sambhavesh Prajapati
Sambhavesh PrajapatiBegginer

My model works well during training and validation.
But inference results differ even with similar inputs.
There’s no obvious bug in the code.
It feels like something subtle is off.

ml pipelinesmodel versioning
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  1. Sadie McCarthy
    Sadie McCarthy Begginer
    2026-01-16T09:23:49+00:00Added an answer on January 16, 2026 at 9:23 am

    Training–serving skew occurs when feature transformations differ between training and inference.

    This often happens when preprocessing is implemented separately in notebooks and production services. Even small differences in scaling, encoding, or default values can change predictions significantly.

    The most reliable fix is to package preprocessing logic as part of the model artifact. Use shared libraries, serialized transformers, or pipeline objects that are reused during inference.

    If that’s not possible, enforce strict feature tests that compare transformed outputs between environments.

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