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Course Outline
Foundations of Apache Spark
- The significance of Spark in big data workflows
- Spark's architectural design and core components
Deployment of Apache Spark
- Essential hardware and software prerequisites
- Setup procedures for standalone and clustered configurations
- Configuration guidelines for system administrators
Cluster Administration
- Tools and methods for cluster governance
- Monitoring applications and tracking resource usage
- Security settings and user access controls
Optimizing Performance
- Strategies for resource allocation and job scheduling
- Tuning Spark configurations for peak efficiency
- Recognizing and eliminating performance bottlenecks
Diagnostic and Resolution Strategies
- Typical challenges in Spark administration
- Utilization of diagnostic tools and troubleshooting methods
- A systematic approach to resolving recurring issues
- Best practices for sustaining a stable Spark environment
Advanced Administrative Concepts
- Integrating Spark with other big data technologies
- Maintaining high availability and disaster recovery capabilities
- Processes for upgrading and scaling Spark clusters
Requirements
- Fundamental understanding of network setup and management
- Experience with the Linux operating system and its command-line interface
- Curiosity regarding distributed computing architectures and big data governance
Target Audience
- System Administrators
35 Hours
Testimonials (3)
A journey through the Spark world: a very intense course. DSL, spark sql, partitioning vs bucketing for me.
Georgiana Elisabeta
Course - Apache Spark Fundamentals
I liked that it was practical. Loved to apply the theoretical knowledge with practical examples.
Aurelia-Adriana - Allianz Services Romania
Course - Python and Spark for Big Data (PySpark)
The fact that we were able to take with us most of the information/course/presentation/exercises done, so that we can look over them and perhaps redo what we didint understand first time or improve what we already did.