Model Deployment Basics - Higher Difficulty Problems

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Q. What does 'model drift' refer to in the context of deployed models?
  • A. The process of updating the model with new data
  • B. The degradation of model performance over time due to changes in data distribution
  • C. The initial training phase of the model
  • D. The difference between training and testing datasets
Q. What is a common method for monitoring a deployed machine learning model?
  • A. Cross-validation
  • B. A/B testing
  • C. Grid search
  • D. K-fold validation
Q. What is a microservice architecture in the context of model deployment?
  • A. A single monolithic application
  • B. A method to deploy models on mobile devices
  • C. A way to break down applications into smaller, independent services
  • D. A technique for batch processing of data
Q. What is the role of a load balancer in model deployment?
  • A. To train multiple models simultaneously
  • B. To distribute incoming requests across multiple instances of a model
  • C. To store model artifacts
  • D. To preprocess input data
Q. What is the significance of 'feature store' in model deployment?
  • A. To store raw model outputs
  • B. To manage and serve features for model training and inference
  • C. To visualize feature importance
  • D. To automate model retraining
Q. What is the significance of 'latency' in model deployment?
  • A. It measures the model's accuracy
  • B. It indicates the time taken to make predictions
  • C. It refers to the amount of data processed
  • D. It assesses the model's complexity
Q. Which deployment strategy involves gradually rolling out a new model to a subset of users?
  • A. Blue-green deployment
  • B. Canary deployment
  • C. Rolling deployment
  • D. Shadow deployment
Q. Which of the following is NOT a common evaluation metric for deployed models?
  • A. Accuracy
  • B. Precision
  • C. Recall
  • D. Training loss
Q. Which of the following is NOT a common method for monitoring deployed models?
  • A. Performance metrics tracking
  • B. User feedback collection
  • C. Data versioning
  • D. Real-time prediction logging
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