Databricks-Machine-Learning-Professional考古題更新 - Databricks-Machine-Learning-Professional權威認證
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Databricks Databricks-Machine-Learning-Professional 考試大綱:
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>> Databricks-Machine-Learning-Professional考古題更新 <<
有效的Databricks-Machine-Learning-Professional考古題更新 |第一次嘗試輕鬆學習並通過考試和專業的Databricks Databricks Certified Machine Learning Professional
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最新的 ML Data Scientist Databricks-Machine-Learning-Professional 免費考試真題 (Q13-Q18):
問題 #13
A Machine Learning Engineer is setting up a cluster for a deep learning training run, but has a number of settings options to choose from. Their cluster will be reused by other engineers on their team and their datasets vary in size from hundreds of MBs to hundreds of GBs. They need to choose a configuration that allows for performant, stable deep learning training without excessive costs. Which configuration will do this?
- A. Using ML Runtime, use a large single node, GPU-enabled VM with auto termination set to 20 minutes to reduce costs
- B. Using Databricks Runtime, use a moderately sized CPU VM for the driver and a variable number of GPU enabled VMs for the workers with autoscale enabled
- C. Using ML Runtime, use a moderately sized CPU VM for the driver and a variable number of GPU enabled VMs for the workers with autoscale enabled
- D. Using ML Runtime, use a moderate sized GPU VM for the driver and a variable number of memory optimized CPU VMs for the workers with autoscale enabled
答案:C
解題說明:
Using the ML Runtime ensures deep learning frameworks and GPU drivers are preconfigured and optimized. A moderately sized CPU driver is sufficient for coordination, while GPU-enabled worker nodes handle the computationally intensive training workload. Enabling autoscaling allows the cluster to efficiently adapt to datasets ranging from hundreds of megabytes to hundreds of gigabytes, providing strong performance without overprovisioning and controlling costs in a shared team environment.
問題 #14
A Machine Learning Engineer has previously built a feature table for model training and inference using a batch mode approach:
They have been informed that they now require these features to be available in "real-time", with latency on the order of a minute. Their manager has informed them there is now a Kafka stream from which they can stream live data, and they need to have this ingested and available for low- latency feature lookups.
Which change to their existing code will achieve this?
- A. Change the incoming_df to be a dataframe based on a readStream() from the Kafka source and publish the table as an online table with the streaming option set to True.
- B. Change the incoming_df to be a dataframe based on a readStream() from the kafka source, the write_table() method will provide a low-latency lookup on this data.
- C. Create a custom pyfunc MLflow model which processes results of the Kafka stream for on demand feature calculation.
- D. Run a triggered workflow to ingest the Kafka data to a dataframe that they can use with their existing write_table() command.
答案:A
解題說明:
To achieve real-time availability with minute-level latency, the feature data must be continuously ingested from Kafka and published to an online table. Using a streaming DataFrame created with readStream from the Kafka source and enabling the online table with streaming allows incremental updates to be synchronized to the online store, supporting low-latency feature lookups for real-time inference.
問題 #15
A Machine Learning Engineer is responsible for maintaining a fraud detection model deployed on Databricks. They want to implement a retraining pipeline that automatically starts when the model's F1 score drops below a threshold or when input feature distributions change significantly.
Which two actions should the engineer take to implement this automated retraining? (Choose two.)
- A. Configure these alerts to send webhook notifications that trigger the model training job.
- B. Schedule a recurring query on the Lakehouse monitoring table.
- C. Use MLflow to manually log metrics and retrain the model offline.
- D. Use Databricks SQL to create alerts on model performance and data drift metrics stored in Delta tables.
- E. Set up a manual retraining schedule to run every week regardless of alerts.
答案:A,D
解題說明:
Databricks Lakehouse Monitoring stores model performance and data drift metrics in Delta tables, which can be monitored using Databricks SQL alerts. By creating alerts on F1 score degradation or significant feature drift and configuring those alerts to send webhook notifications, the engineer can automatically trigger a retraining job whenever predefined conditions are met, enabling event-driven, automated retraining aligned with MLOps best practices.
問題 #16
A Machine Learning Engineer has a large dataset with a customer_region column and wants to train separate models for each region, then generate predictions. They need to parallelize this group-specific model training process using Databricks and the Pandas Function API. Which approach will implement this solution?
- A. Use groupBy("customer_region") and apply a training function with applyInPandas().
- B. Use foreachBatch() to sequentially process each region's data.
- C. Use collect() to gather all data and process regions using standard pandas groupby.
- D. Use mapInPandas() to apply the training function across all partitions without grouping.
答案:A
解題說明:
The Pandas Function API supports parallel, group-specific processing by using groupBy on the grouping column and applyInPandas to execute a custom training function independently for each group. This enables separate models to be trained per region in parallel across the cluster, with each function invocation receiving only the data for its group.
問題 #17
Which of the following is a reason for using Jensen-Shannon (JS) distance over a Kolmogorov-Smirnov (KS) test for numeric feature drift detection?
- A. JS does not require any manual threshold or cutoff determinations
- B. All of these reasons
- C. None of these reasons
- D. JS is more robust when working with large datasets
- E. JS is not normalized or smoothed
答案:D
問題 #18
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