Designing Real-Time Data Architectures with Spark and Kafka
Learn to build scalable, event-driven streaming pipelines and process high-throughput data streams using Spark Structured Streaming and Kafka.
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Tungkol sa kursong ito
In today's fast-paced digital landscape, processing data as it arrives is crucial for making timely, data-driven decisions. This text-based course guides you through the core principles of building robust, low-latency data pipelines using the industry-standard combination of Spark and Kafka. You will transition from understanding basic batch processing to designing fully functional, real-time streaming architectures. By reading through clear, practical explanations and structured code examples, you will learn how to ingest, transform, and store continuous data streams efficiently, preparing you to tackle modern data engineering challenges.
What you'll learn:
- Understand the foundational concepts of event-driven architectures, message brokers, and stream processing.
- Configure Kafka topics, producers, and consumers to establish reliable real-time data ingestion.
- Apply Spark Structured Streaming to perform real-time transformations, aggregations, and windowing operations.
- Integrate schema management concepts to ensure data consistency and handle evolving message structures.
- Build end-to-end pipelines that write processed streaming data to modern storage layers and data lakes.
- Implement basic testing and monitoring strategies for stream-processing applications.
We begin with the essential terminology of streaming systems before moving step-by-step through setting up local development environments, writing streaming queries, and handling out-of-order data. You will explore practical, text-guided scenarios that demonstrate how these technologies work together in production environments. This course is designed for aspiring data engineers, software developers, and system architects who are new to real-time data processing. No prior experience with Spark or Kafka is required, though a basic familiarity with programming concepts is helpful. Start reading today to master the fundamentals of real-time data engineering and build scalable streaming architectures.
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2 oras 42 min ng practical content
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