What is the duration, language, and format of Google Professional Data Engineer Exam
- Passing score: 80%
- Language: English (U.S.), Japanese, Spanish, and Portuguese
- Cost: $200
- Format: Multiple choices, multiple answers
- Number of Questions: 50-60
- Length of Examination: 120 minutes
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Understanding functional and technical aspects of Google Professional Data Engineer Exam Operationalizing machine learning models
The following will be discussed here:
- Distributed vs. single machine
- Operationalizing machine learning models
- Use of edge compute
- Continuous evaluation
- Conversational experiences (e.g., Dialogflow)
- Impact of dependencies of machine learning models
- Machine learning terminology (e.g., features, labels, models, regression, classification, recommendation, supervised and unsupervised learning, evaluation metrics)
- Retraining of machine learning models (Cloud Machine Learning Engine, BigQuery ML, Kubeflow, Spark ML)
- Common sources of error (e.g., assumptions about data)
- Customizing ML APIs (e.g., AutoML Vision, Auto ML text)
- Measuring, monitoring, and troubleshooting machine learning models
- ML APIs (e.g., Vision API, Speech API)
- Deploying an ML pipeline
- Choosing the appropriate training and serving infrastructure
- Hardware accelerators (e.g., GPU, TPU)
- Ingesting appropriate data
- Leveraging pre-built ML models as a service
The Google Professional Data Engineer certification is designed to equip the individuals with the required knowledge and skills to enable data-driven decision-making through collecting, transforming, and publishing data. To earn this certificate, the candidates will be required to pass a single test measuring their skills in leveraging, deploying, and continuously training pre-existing machine learning models. The qualifying exam also evaluates the ability of the applicants to design, build, operationalize, monitor, and secure data processing systems.
Reference: https://cloud.google.com/certification/data-engineer
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Google Professional-Data-Engineer日本語 Exam Syllabus Topics:
| Section | Weight | Objectives |
|---|---|---|
| Ingesting and processing the data (~20% of the exam) | 20% | - Performing security considerations
|
| Preparing and using data for analysis (~15% of the exam) | 15% | - Sharing data securely
|
| Maintaining and automating data workloads (~15% of the exam) | 15% | - Designing for reliability and fidelity
|
| Storing the data (~20% of the exam) | 20% | - Planning for using a data warehouse
|
| Designing data processing systems (~30% of the exam) | 30% | - Designing data pipelines
|






