Big Data and Data Engineering Bootcamp

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4.000,00 EGP 6.000,00 EGP
4.000,00 EGP 6.000,00 EGP

Course content:

Introduction to Big Data and Data Engineering – part1
Big Data needs Data Engineering because raw data is too large, fast, and messy to process or use directly. Data Engineering solves this by building scalable systems (scale-out) to collect, store, and process data efficiently.

Introduction to Big Data and Data Engineering – part2
Data is growing continuously because of social media, IoT, and digital systems, so Big Data is large, fast, and diverse data that has 5Vs (Volume, Velocity, Variety, Veracity, Value). We handle it using Batch Processing for large historical data and Real-Time Analytics for instant insights and fast decision-making.

Introduction to Big Data and Data Engineering – part3
Big Data faces challenges like huge volume, variety, and processing complexity, so systems like OLTP, Data Warehouses, Data Lakes, and Lakehouses are used to manage it. ETL transforms data before loading, while ELT loads data first then transforms it for modern big data processing.

Introduction to Big Data and Data Engineering – part4

Data Engineering with SQL & Python

Hadoop Production Deployment & Cluster Setup

Enterprise Data Engineering with Apache Spark

Kafka: From Zero to Production

Snowflake

Apache Airflow: From Basics to Production

Data Warehouse Design & Implementation

What you will learn:

  • Python & SQL for data engineering
  • ETL & Data Pipelines from source to target
  • Hadoop and distributed data processing
  • Apache Spark for big data processing
  • Apache Kafka for real-time data streaming
  • Apache Airflow for workflow orchestration
  • Data Warehousing and dimensional modeling
  • Real-world projects that bring all technologies together

Course requirements:

  • A laptop with a stable internet connection
  • Commitment to practice and complete projects

This course includes:

  • Access to recorded sessions
  • Live coaching and mentoring sessions
  • Hands-on, production-level projects
  • Pre-configured technical environment
  • Real-world datasets and case studies
  • Data pipeline and architecture templates
  • Interview preparation resources
  • Ongoing technical support

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Instructor:

Eng Mohammed
Eng Mohammed
Big Data Engineer and Data Consultant @ ISD Company