825 Ratings
Master modern data lake architecture and open table formats with Edubrights’ Apache Iceberg – Open Table Format for Data Lakes training in Chennai. This course is designed for students, freshers, data engineers, big data professionals, cloud architects, data architects, and working professionals who want to build scalable, reliable, and high-performance data lake solutions.
Gain hands-on experience with Apache Iceberg architecture, table management, schema evolution, partitioning, time travel, ACID transactions, metadata management, and real-world data engineering projects through practical industry use cases.
✅ Real-Time Data Lake Projects & Enterprise Data Engineering Use Cases
✅ Live Instructor-Led Training by Big Data & Cloud Experts
✅ Hands-On Practice with Apache Iceberg & Modern Data Lake Technologies
✅ Open Table Format Architecture & Data Lakehouse Concepts
✅ ACID Transactions for Reliable Data Operations
✅ Schema Evolution, Partition Evolution & Data Versioning Techniques
✅ Time Travel, Rollback & Historical Data Analysis Features
✅ Metadata Management & Query Performance Optimization
✅ Integration with Apache Spark, Flink, Trino & Cloud Platforms
✅ Building Scalable Data Lakes for Analytics & AI Workloads
✅ Data Governance, Reliability & Best Practices for Modern Data Platforms
✅ Resume Building, Portfolio Development & Mock Interview Preparation
✅ Career Guidance, Placement Assistance & Certification Support
✅ Flexible Online, Classroom & Weekend Training Options
✅ Corporate Training for Data Engineering, Analytics & Cloud Teams
Build practical Apache Iceberg expertise, modernize data lake architectures, and become industry-ready for careers in Data Engineering, Big Data, Cloud Analytics, and Lakehouse Technologies.

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You will learn how to build, manage, and optimize modern data lake architectures using Apache Iceberg. The course covers Iceberg table formats, schema evolution, partitioning, snapshots, time travel, ACID transactions, metadata management, and integration with Spark, Flink, Hive, Trino, and cloud platforms.
The course provides hands-on experience in creating enterprise data lakes, managing large-scale analytical datasets, implementing version-controlled tables, optimizing query performance, and integrating Iceberg with modern data processing engines.
You will gain expertise in Apache Iceberg architecture, table creation, partition evolution, schema evolution, snapshot management, time travel queries, data compaction, metadata optimization, cloud storage integration, and performance tuning.
You will work on practical projects involving enterprise data lakes, cloud analytics platforms, financial reporting systems, customer analytics, streaming data pipelines, and modern data warehouse implementations.
This course prepares you for roles such as Data Engineer, Big Data Engineer, Data Platform Engineer, Cloud Data Engineer, Analytics Engineer, Data Warehouse Engineer, ETL Developer, and Data Architect.
Project 1
Build a scalable enterprise data lake using Apache Iceberg to store, manage, and analyze structured and semi-structured business data.
Project 2
Develop a modern analytical platform that supports version-controlled datasets, schema evolution, and historical reporting using Iceberg.
Project 3
Create a cloud-based analytics solution that processes customer behavior data with optimized partitioning, snapshots, and time travel capabilities.
Project 4
Build a real-time streaming data pipeline integrating Apache Flink and Apache Iceberg for continuous data ingestion and analytics.
Project 5
Optimize large-scale cloud datasets through metadata management, compaction strategies, partition evolution, and query performance tuning.
Edubrights offers APACHE ICEBERG – OPEN TABLE FORMAT FOR DATA LAKES Training in virtual mode with expert trainers. Here are the key features,
40 Hours Course Duration
100% Job Oriented Training
Industry Expert Faculties
Free Demo Class Available
Completed 500+ batches
Certification Guidance
Module 1: Introduction to Open Table Formats
Module 2: Iceberg Architecture and File Structure
Module 3: Working with Iceberg Using Spark
Module 4: Schema and Partition Evolution
Module 5: Time Travel and Rollback
Module 6: Iceberg with Different Query Engines
Module 7: Iceberg Catalog Management
Module 8: Capstone Project and Assessment
Experience in the Industry Gain expertise from data lakehouse engineers who have implemented Apache Iceberg as the open table format for cloud data lakes on AWS, Azure, and GCP, enabling reliable analytics across multiple query engines.
Backgrounds at the Top Our Apache Iceberg trainers have built open lakehouse architectures at technology companies and data engineering teams adopting Iceberg for its ACID guarantees, schema evolution, and multi-engine compatibility.
Clear & Effective Teaching Iceberg architecture, snapshot model, schema and partition evolution, time travel, Spark integration, catalog management, and multi-engine access are explained with real data lake modernisation examples.
Hands-On Learning Focus Students create Iceberg tables with Spark, perform schema and partition evolution, run time travel queries, manage catalog configurations, and build streaming Flink pipelines through structured lab exercises.
Up-to-Date Knowledge Trainers keep content current with the latest Apache Iceberg releases, Iceberg REST catalog standard adoption, Iceberg v3 format features, and evolving open table format best practices.
The Professional Apache Iceberg Data Lake Certification validates your expertise in building and managing modern data lakes using Apache Iceberg.

Answer: Apache Iceberg is an open-source table format for data lakes that provides ACID transactions, schema evolution, partition evolution, and time travel capabilities.
Answer: Schema evolution allows you to safely add, modify, or remove columns without affecting existing data or applications.
Answer: Time travel enables users to query historical versions of data using snapshots for auditing, recovery, and analysis.
Answer: ACID transactions ensure data consistency, reliability, isolation, and durability during data operations in a data lake.
Answer: Apache Iceberg simplifies large-scale data lake management by providing reliable table formats, metadata management, and high-performance analytics.
Answer: Banking, healthcare, retail, e-commerce, telecommunications, manufacturing, finance, cloud computing, SaaS companies, and enterprise organizations use Apache Iceberg.
Answer: Yes. Apache Iceberg is widely used for enterprise-scale data lake implementations, analytics platforms, and cloud-native data architectures.
Answer: Yes. The course includes hands-on projects involving cloud data lakes, streaming analytics, enterprise reporting, and big data engineering.
Answer: Yes. Learners with basic SQL, Python, or Spark knowledge can understand Apache Iceberg through structured practical training.
Answer: Apache Iceberg is becoming a leading open table format for modern data lakes, making it a highly valuable skill for data engineering and cloud analytics professionals.
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