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Building Modern Data Analytics Solutions on AWS Course in Germany

Master modern data architectures with hands-on AWS tools

32 hours of expert-led training sessions

Four intermediate-level AWS course options to explore

Learn from AWS-certified instructors with real-world expertise

Access to expert-led lessons, labs, & case studies

Flexible learning options to fit your schedule & learning style

Various payment methods with instalment plans available

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Overview

What you will master with us:

  • Manage secure data lakes with the help of AWS Lake Formation
  • Build end-to-end analytics pipelines using Amazon EMR
  • Conduct large-scale batch processing using Apache Spark on EMR
  • Stream and analyze real-time data through Amazon Kinesis
  • Improve Redshift configurations for secure data insights
  • Utilize AWS Glue for efficient cloud-based data storage
  • Implement streaming data workflows with Amazon MSK

Upcoming sessions

Curriculum

1

Introduction to Data Lakes

2

Data ingestion, cataloging and preparation

3

Building a Data Lake with AWS Lake formation

4

Data processing and analysis

5

Additional Lake formation configurations

6

Modern data architecture

1

Overview of Data Analytics and the Data Pipeline

2

Introduction to Amazon EMR

3

Data Analytics Pipeline Using Amazon EMR: Ingestion and Storage

4

High-Performance Batch Data Analytics Using Apache Spark on Amazon EMR

5

Processing and Analysing Batch Data with Amazon EMR and Apache Hive

6

Serverless Data Processing

7

Security and Monitoring of Amazon EMR Clusters

8

Designing Batch Data Analytics Solutions

9

Developing Modern Data Architectures on AWS

1

Overview of Data Analytics and the Data Pipeline

2

Using Amazon Redshift in the Data Analytics Pipeline

3

Introduction to Amazon Redshift

4

Ingestion and Storage

5

Processing and Optimizing Data

6

Security and Monitoring of Amazon Redshift Clusters

7

Designing Data Warehouse Analytics Solutions

8

Developing Modern Data Architectures on AWS

1

Overview of Data Analytics and the Data Pipeline

2

Using Streaming Services in the Data Analytics Pipeline

3

Introduction to AWS Streaming Services

4

Using Amazon Kinesis for Real-time Data Analytics

5

Securing, Monitoring and Optimizing Amazon Kinesis

6

Using Amazon MSK in Streaming Data Analytics Solutions

7

Securing, Monitoring and Optimizing Amazon MSK

8

Designing Streaming Data Analytics Solutions

9

Developing Modern Data Architectures on AWS

Meet your Trainer

Our Trainers

Learners Point has a reputation for high-quality training that makes a difference in people's lives. We undertake a practical and innovative approach to working closely with businesses to improve their workforce. Our expertise is wide-ranging with ample support from our expert trainers who are globally recognized and hold a diverse set of experiences in their field of expertise. We are proud of our instructors who take ownership of our distinctive and comprehensive training methodologies, help our students imbibe those with ease, and accomplish gracefully.

We at Learners Point believe in encouraging our students to embark upon a journey of lifelong learning and self-development, with the aid of our comprehensive and distinctive courses tailored to current market trends. The manifestation of our career-oriented approach is what we assure through a pleasant professional enriched environment with cutting-edge technology, and an outstanding while highly acknowledged training staff that uses up-to-date methodologies and quality course material. With our aim to mold professionals to be future leaders, our industry expert trainers provide the best in town mentorship to our students while endowing them with the thirst for knowledge and inspiring them to strive for professional and human excellence.

Our Trainers

Learning Outcomes

After you complete this training, you will be able to:

  • 1

    Use AWS Lake Formation to build cloud-native data lakes with governance and scalability

  • 2

    Develop fast and reliable analytics pipelines with full use of Amazon EMR tools

  • 3

    Apply Apache Spark to process large batches of data in distributed environments

  • 4

    Implement real-time data flows and analytics with Amazon Kinesis streaming services

  • 5

    Design robust and optimised data warehouses using Amazon Redshift

  • 6

    Handle ETL operations and secure data storage using AWS Glue effectively

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    Prerequisites

    To enrol in the Building Modern Data Analytics Solutions on AWS Course in Germany, we recommend that you fulfil these eligibility requirements:

    • Understanding of relational databases and data warehousing basics
    • Previous experience with data analytics tools and techniques
    • Hands-on knowledge of core AWS services like S3, EC2, and IAM
    • Basic skills in scripting languages, such as Python
    • Familiarity with ETL (Extract, Transform, Load) workflows and data preparation techniques
    • Knowing the basics of networking, including VPC, subnets, and security groups

    Overall ratings by our students

    Related courses

    Frequently asked questions

    This Building Modern Data Analytics Solutions on AWS course in Germany is all about teaching professionals how to create full-scale data analytics pipelines using AWS. You get hands-on experience with tools like Amazon EMR, Redshift, Glue, Kinesis, Lake Formation, and MSK. You also explore modern data architectures and work with both batch and live data workflows.

    The course covers several serverless tools, like:

    • Use AWS Glue for ETL workflows
    • Explore serverless data processing options
    • Design scalable, cost-effective pipelines without provisioning infrastructure

    Professionals are given a 100% refund if they discontinue with this training after initial registration. However, it is essential to submit a written refund request within two days of the initial registration date. If the request is accepted, the refund will be processed within four weeks from the withdrawal request date.

    This Building Modern Data Analytics Solutions on AWS Training in Germany includes hands-on exposure to:

    • Amazon Kinesis for real-time analytics
    • Amazon MSK for scalable data streaming
    • Monitoring and security practices for both Kinesis and MSK
    • Design of complete streaming analytics pipelines

    The data processing techniques covered in the training are:

    • Batch processing with Apache Spark and Hive
    • Stream processing with Kinesis and MSK
    • Serverless ETL using AWS Glue
    • Real-time and historical analytics strategies

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