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GCP Professional Cloud Architect Practice Question

A fintech company is rebuilding its on-premises ML workflow as a Vertex AI Pipeline. The solution must 1) ingest raw transaction logs from Cloud Storage and perform cleansing and feature engineering, 2) train an XGBoost model on the processed data, 3) calculate AUC on a hold-out set and skip deployment when the metric is below 0.95, and 4) push the model to a Vertex AI endpoint for low-latency predictions when the threshold is met. Which ordered sequence of pipeline components best satisfies these requirements?

  • Data-preprocessing component β†’ Deployment component β†’ Evaluation component β†’ Training component

  • Hyperparameter-tuning component β†’ Deployment component β†’ Training component β†’ Evaluation component

  • Data-preprocessing component β†’ Training component β†’ Evaluation component gated by a condition β†’ Deployment component

  • Training component β†’ Data-preprocessing component β†’ Deployment component β†’ Evaluation component

GCP Professional Cloud Architect
Managing and provisioning a solution infrastructure
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