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Google Professional-Data-Engineer Exam Syllabus Topics:

SectionWeightObjectives
Building and operationalizing data processing systems24%- Data processing and transformation
  • 1. ETL/ELT pipeline design
    • 2. Using Dataproc, Dataflow, and BigQuery SQL
      - Data ingestion and integration
      • 1. Batch ingestion pipelines (BigQuery, Cloud Storage)
        • 2. Streaming ingestion (Pub/Sub, Dataflow)
          Ensuring solution quality28%- Security and governance
          • 1. IAM and access control in GCP
            • 2. Data governance and compliance
              - Reliability and performance
              • 1. Fault tolerance and recovery strategies
                • 2. Monitoring pipelines and workloads
                  Designing data processing systems22%- Batch and streaming data processing design
                  • 1. Event-driven vs batch architectures
                    • 2. Latency, throughput, and consistency trade-offs
                      - Data architecture and storage design
                      • 1. Choosing appropriate data storage solutions (relational, NoSQL, data warehouse)
                        • 2. Designing scalable and cost-effective data models
                          Operationalizing machine learning models26%- Model deployment and monitoring
                          • 1. Model monitoring and drift detection
                            • 2. Online vs batch prediction
                              - ML pipeline integration
                              • 1. Vertex AI pipeline deployment
                                • 2. Feature engineering and feature stores

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                                  Google Certified Professional Data Engineer Exam Sample Questions (Q241-Q246):

                                  NEW QUESTION # 241
                                  An online brokerage company requires a high volume trade processing architecture. You need to create a secure queuing system that triggers jobs. The jobs will run in Google Cloud and cat the company's Python API to execute trades. You need to efficiently implement a solution. What should you do?

                                  Answer: B


                                  NEW QUESTION # 242
                                  How can you get a neural network to learn about relationships between categories in a categorical feature?

                                  Answer: C

                                  Explanation:
                                  There are two problems with one-hot encoding. First, it has high dimensionality, meaning that instead of having just one value, like a continuous feature, it has many values, or dimensions. This makes computation more time-consuming, especially if a feature has a very large number of categories. The second problem is that it doesn't encode any relationships between the categories. They are completely independent from each other, so the network has no way of knowing which ones are similar to each other.
                                  Both of these problems can be solved by representing a categorical feature with an embedding column. The idea is that each category has a smaller vector with, let's say, 5 values in it.
                                  But unlike a one-hot vector, the values are not usually 0. The values are weights, similar to the weights that are used for basic features in a neural network. The difference is that each category has a set of weights (5 of them in this case).
                                  You can think of each value in the embedding vector as a feature of the category. So, if two categories are very similar to each other, then their embedding vectors should be very similar too.
                                  Reference: https://cloudacademy.com/google/introduction-to-google-cloud-machine-learning-engine-course/a-wide-and-deep-model.html


                                  NEW QUESTION # 243
                                  When a Cloud Bigtable node fails, ____ is lost.

                                  Answer: D

                                  Explanation:
                                  A Cloud Bigtable table is sharded into blocks of contiguous rows, called tablets, to help balance the workload of queries. Tablets are stored on Colossus, Google's file system, in SSTable format. Each tablet is associated with a specific Cloud Bigtable node.
                                  Data is never stored in Cloud Bigtable nodes themselves; each node has pointers to a set of tablets that are stored on Colossus. As a result:
                                  Rebalancing tablets from one node to another is very fast, because the actual data is not copied. Cloud Bigtable simply updates the pointers for each node.
                                  Recovery from the failure of a Cloud Bigtable node is very fast, because only metadata needs to be migrated to the replacement node.
                                  When a Cloud Bigtable node fails, no data is lost


                                  NEW QUESTION # 244
                                  What Dataflow concept determines when a Window's contents should be output based on certain criteria being met?

                                  Answer: B

                                  Explanation:
                                  Triggers control when the elements for a specific key and window are output. As elements arrive, they are put into one or more windows by a Window transform and its associated WindowFn, and then passed to the associated Trigger to determine if the Windows contents should be output.
                                  Reference:
                                  https://cloud.google.com/dataflow/java-sdk/JavaDoc/com/google/cloud/dataflow/sdk/transforms/windowing/Trig


                                  NEW QUESTION # 245
                                  You are loading CSV files from Cloud Storage to BigQuery. The files have known data quality issues, including mismatched data types, such as STRINGS and INT64s in the same column, and inconsistent formatting of values such as phone numbers or addresses. You need to create the data pipeline to maintain data quality and perform the required cleansing and transformation. What should you do?

                                  Answer: D

                                  Explanation:
                                  Data Fusion's advantages:
                                  Visual interface: Offers a user-friendly interface for designing data pipelines without extensive coding, making it accessible to a wider range of users.
                                  Built-in transformations: Includes a wide range of pre-built transformations to handle common data quality issues, such as:
                                  Data type conversions
                                  Data cleansing (e.g., removing invalid characters, correcting formatting) Data validation (e.g., checking for missing values, enforcing constraints) Data enrichment (e.g., adding derived fields, joining with other datasets) Custom transformations: Allows for custom transformations using SQL or Java code for more complex cleaning tasks.
                                  Scalability: Can handle large datasets efficiently, making it suitable for processing CSV files with potential data quality issues.
                                  Integration with BigQuery: Integrates seamlessly with BigQuery, allowing for direct loading of transformed data.


                                  NEW QUESTION # 246
                                  ......

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