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Google Professional-Machine-Learning-Engineer Exam Overview:

Certification Vendor:Google Cloud
Exam Name:Google Cloud Certified - Professional Machine Learning Engineer
Exam Number:Professional-Machine-Learning-Engineer
Certificate Validity Period:2 years
Passing Score:Not publicly disclosed (Pass/Fail)
Exam Format:Multiple select, Multiple choice
Real Exam Qty:50-60
Exam Duration:120 minutes
Related Certifications:Google Cloud Certified - Professional Data Engineer
Exam Price:$200 USD
Available Languages:English, Japanese
Sample Questions:Google Professional-Machine-Learning-Engineer Sample Questions
Exam Way:Online (proctored) or Test center (Kryterion)
Pre Condition:Recommended 3+ years of industry experience with ML models and 1+ year of experience using Google Cloud.
Official Syllabus URL:https://cloud.google.com/learn/certification/machine-learning-engineer

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Google Professional Machine Learning Engineer Exam is a certification exam offered by Google Cloud for professionals who demonstrate mastery in designing, building, and deploying scalable machine learning models. Professional-Machine-Learning-Engineer Exam is designed to assess the candidate's ability to use Google Cloud's machine learning technologies to develop and deploy production-grade ML models, as well as to optimize and maintain them to ensure their reliability, accuracy, and scalability.

Google Professional Machine Learning Engineer Sample Questions (Q358-Q363):

NEW QUESTION # 358
You work for an online publisher that delivers news articles to over 50 million readers. You have built an AI model that recommends content for the company's weekly newsletter. A recommendation is considered successful if the article is opened within two days of the newsletter's published date and the user remains on the page for at least one minute.
All the information needed to compute the success metric is available in BigQuery and is updated hourly. The model is trained on eight weeks of data, on average its performance degrades below the acceptable baseline after five weeks, and training time is 12 hours. You want to ensure that the model's performance is above the acceptable baseline while minimizing cost. How should you monitor the model to determine when retraining is necessary?

Answer: B

Explanation:
Scheduling a weekly query in BigQuery to compute the success metric is a cost-effective way to monitor the model's performance. BigQuery allows you to run complex queries on large datasets in a cost-effective and performant manner. By using BigQuery, you can compute the success metric on a regular basis without incurring the additional costs of other services such as Vertex AI or Cloud Composer.
Additionally, by scheduling the query to run weekly, you can ensure that you are monitoring the model's performance in a timely manner, while still providing enough time for the model to degrade below the acceptable baseline. You can then use the results of the query to determine when retraining is necessary.


NEW QUESTION # 359
You need to build classification workflows over several structured datasets currently stored in BigQuery.
Because you will be performing the classification several times, you want to complete the following steps without writing code: exploratory data analysis, feature selection, model building, training, and hyperparameter tuning and serving. What should you do?

Answer: C

Explanation:
AutoML Tables is a service that allows you to automatically build and deploy state-of-the-art machine learning models on structured data without writing code. You can use AutoML Tables to perform the following steps for the classification task:
* Exploratory data analysis: AutoML Tables provides a graphical user interface (GUI) and a command-line interface (CLI) to explore your data, visualize statistics, and identify potential issues.
* Feature selection: AutoML Tables automatically selects the most relevant features for your model based on the data schema and the target column. You can also manually exclude or include features, or create new features from existing ones using feature engineering.
* Model building: AutoML Tables automatically builds and evaluates multiple machine learning models using different algorithms and architectures. You can also specify the optimization objective, the budget, and the evaluation metric for your model.
* Training and hyperparameter tuning: AutoML Tables automatically trains and tunes your model using the best practices and techniques from Google's research and engineering teams. You can monitor the training progress and the performance of your model on the GUI or the CLI.
* Serving: AutoML Tables automatically deploys your model to a fully managed, scalable, and secure environment. You can use the GUI or the CLI to request predictions from your model, either online (synchronously) or offline (asynchronously).
References:
* [AutoML Tables documentation]
* [AutoML Tables overview]
* [AutoML Tables how-to guides]


NEW QUESTION # 360
A Data Scientist is training a multilayer perception (MLP) on a dataset with multiple classes. The target class of interest is unique compared to the other classes within the dataset, but it does not achieve and acceptable recall metric. The Data Scientist has already tried varying the number and size of the MLP's hidden layers, which has not significantly improved the results. A solution to improve recall must be implemented as quickly as possible.
Which techniques should be used to meet these requirements?

Answer: C


NEW QUESTION # 361
You work at a gaming startup that has several terabytes of structured data in Cloud Storage. This data includes gameplay time data, user metadata, and game metadata. You want to build a model that recommends new games to users that requires the least amount of coding. What should you do?

Answer: A

Explanation:
https://developers.google.com/machine-learning/recommendation/collaborative/matrix


NEW QUESTION # 362
You are developing an ML model intended to classify whether X-ray images indicate bone fracture risk. You have trained a ResNet architecture on Vertex AI using a TPU as an accelerator, however you are unsatisfied with the training time and memory usage. You want to quickly iterate your training code but make minimal changes to the code. You also want to minimize impact on the model's accuracy. What should you do?

Answer: A

Explanation:
https://cloud.google.com/tpu/docs/bfloat16


NEW QUESTION # 363
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