Whizlabs

Google Cloud Foundations & Data Processing

Whizlabs

Google Cloud Foundations & Data Processing

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Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

6 hours to complete
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

6 hours to complete
Flexible schedule
Learn at your own pace

Details to know

Shareable certificate

Add to your LinkedIn profile

Recently updated!

August 2026

Assessments

6 assignments

Taught in English

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Build your subject-matter expertise

This course is part of the Google Cloud Certified Professional Data Engineer Specialization
When you enroll in this course, you'll also be enrolled in this Specialization.
  • Learn new concepts from industry experts
  • Gain a foundational understanding of a subject or tool
  • Develop job-relevant skills with hands-on projects
  • Earn a shareable career certificate

There are 3 modules in this course

In this section, you'll build a strong foundation in Google Cloud and learn how its cloud computing platform supports modern applications, infrastructure, and business workloads. You'll begin with a course and exam overview before exploring what Google Cloud is and how its services help organizations build, deploy, and manage solutions in the cloud. As you progress, you'll discover Google Cloud services and learn how regions and zones provide flexible options for deploying resources with high availability and resilience. You'll also explore the key features, benefits, and common use cases of Google Cloud to understand how organizations leverage cloud technologies to improve scalability, performance, and operational efficiency. The section further introduces the Google Cloud Console, providing a guided overview of its interface and essential capabilities. You'll learn how to navigate the console and become familiar with the tools used to manage Google Cloud resources and services. By the end of this section, you'll have a solid understanding of Google Cloud fundamentals, including its services, global infrastructure, key benefits, and management console, enabling you to confidently begin working with Google Cloud environments.

What's included

5 videos2 readings2 assignments1 discussion prompt

In this section, you'll build a strong foundation in Google Cloud data storage and database services, learning how different storage and database solutions support modern data engineering workloads. You'll begin by exploring Google Cloud storage options and gain an understanding of how organizations select appropriate services based on data type, scalability, performance, and application requirements. As you progress, you'll explore key Google Cloud database services, including Cloud Spanner, Cloud SQL, Bigtable, and Firestore. You'll learn how these services support different relational, non-relational, transactional, and globally distributed application workloads. The section further introduces Hybrid Transactional/Analytical Processing (HTAP) databases, helping you understand how transactional and analytical workloads can be supported within modern data architectures. By comparing the capabilities of different Google Cloud database services, you'll develop the knowledge required to select suitable data storage solutions for various business scenarios. By the end of this section, you'll have a solid understanding of Google Cloud storage and database fundamentals, enabling you to identify and select appropriate data storage and database services for scalable and reliable data engineering solutions.

What's included

6 videos1 reading2 assignments

In this section, you'll build a strong foundation in Google Cloud data processing and ETL, learning how to design, deploy, automate, and manage data pipelines for modern data engineering workloads. You'll begin by exploring pipeline design and development concepts, followed by deployment practices and a practical demonstration of integrating Dataflow with Pub/Sub for data processing. As you progress, you'll explore Google Cloud Dataflow and Dataproc to understand how managed services support batch and stream data processing at scale. You'll also learn about Data Loss Prevention (DLP) and Cloud Dataprep for identifying sensitive information, preparing datasets, and improving data quality for analytics. The section further introduces data lifecycle management and Cloud Composer, enabling you to understand how data can be managed throughout its lifecycle and how Apache Airflow-based workflows can be orchestrated. Through practical demonstrations, you'll explore how Cloud Composer can integrate with Dataproc and Hadoop to automate complex data processing workflows. By the end of this section, you'll have a solid understanding of Google Cloud data processing, ETL, pipeline development, data preparation, and workflow orchestration, enabling you to build scalable and automated data engineering solutions.

What's included

5 videos2 readings2 assignments

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