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Data Engineering: Build Scalable Pipelines

Data Engineering turns raw data into value. DataCamp’s hands-on courses take you from scripting to production architecture. Learn ETL/ELT, warehousing, and orchestration with Python, SQL, Airflow, Spark, and dbt on AWS and Azure. Build skills to design and maintain high-performance data systems.

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Recommended for Data Engineering beginners

Build your Data Engineering skills with interactive courses, curated by real-world experts

 

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Tìm hiểu Data Engineering

Cơ bảnTrình độ kỹ năng
4.8+
12.217 đánh giá
2 gio
Khám phá cách các kỹ sư dữ liệu xây dựng nền tảng cơ bản để khoa học dữ liệu trở nên khả thi. Không cần viết mã!

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Kỹ sư dữ liệu trong Python

4.3+
51 đánh giá
40 gio
Nắm vững các kỹ năng được săn đón để thu thập, làm sạch, quản lý dữ liệu một cách hiệu quả, cũng như lên lịch và giám sát các quy trình xử lý dữ liệu, giúp bạn nổi bật trong lĩnh vực kỹ thuật dữ liệu.

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Duyệt khóa học và lộ trình Data Engineering

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Nhập môn Data Quality với Great Expectations

Trung cấpTrình độ kỹ năng
4.7+
425 đánh giá
4 gio
Đảm bảo chất lượng dữ liệu cao trong các quy trình làm việc Khoa học dữ liệu và kỹ thuật dữ liệu với thư viện Great Expectations của Python.

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Nền tảng về PySpark

Trung cấpTrình độ kỹ năng
4.7+
637 đánh giá
4 gio
Học cách triển khai quản lý dữ liệu phân tán và học máy trong Spark bằng cách sử dụng gói PySpark.

Khóa học

Advanced Data Engineering with Snowflake

Trung cấpTrình độ kỹ năng
4.8+
31 đánh giá
3 gio
Build reliable Snowflake pipelines with DevOps and observability: Git, CI/CD, and Snowflake Trail monitoring.

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Giới thiệu về Redshift

Trung cấpTrình độ kỹ năng
4.8+
139 đánh giá
4 gio
Nắm vững SQL, quản lý dữ liệu, tối ưu hóa và bảo mật của Amazon Redshift.

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Nhập môn Spark với sparklyr trong R

Trung cấpTrình độ kỹ năng
4.7+
85 đánh giá
4 gio
Phân tích dữ liệu lớn với Spark và gói sparklyr trong R, khám phá Spark MLIb chỉ trong 4 giờ.

Ready to apply your skills?

Projects allow you to apply your knowledge to a wide range of datasets to solve real-world problems in your browser

Frequently asked questions

Which data engineering course is best for beginners?

The Understanding Data Engineering course is the best startpoint for absolute beginners looking to better understand the role of a data engineer. If you're looking to begin a career as a data engineer and you have some foundational SQL skills, the Data Engineer in Python Career Track will develop your understanding of automating and optimizing data processes with Python.

What does a data engineer do?

Data engineers collect, organize, and prepare large amounts of structured and unstructured data for further analysis. They also design and build data pipelines and databases to manage the flow of volumes of raw information.

An essential part of the data industry, data engineers ensure that data scientists and analysts have what they need to do their jobs.

Some data engineers work on general, end-to-end data delivery tasks, while others focus on pipelines that connect data from distributed sources such as data lakes, warehouses, and databases. Some data engineers have a focus on database systems specifically.

Are data engineer skills in demand?

Yes, the demand for data engineers and people with these skills is very high. The growth rate of data engineer jobs is projected at 21% between 2018 and 2028.

The rise of AI and machine learning solutions that help power the rapid management and analysis of data mean there’s a need for people who understand the evolving data landscape. Our courses and Data Engineer Certification are designed to build your skills and get you recruited.

How much math do I need to learn data engineering?

It depends. If you enter the profession through the traditional pathway, it typically involves a Bachelor’s degree in computer science, perhaps followed by a Master’s. To study computer science, most degree programs require a basic understanding of calculus, algebra, statistics, and discrete mathematics.

You can also become a data engineer through a more modern pathway, such as online courses with providers like DataCamp, or by working in related data roles and building your knowledge of data engineering. In this case, math is certainly helpful, but it’s not a prerequisite.

Note that data engineers don’t use mathematics as much as data scientists or analysts. You don’t need to be a math whiz to design and create the systems that manage data, nor to collect, collate, and prepare it for others to analyze.

Do I need programming skills for data engineering?

Yes, programming skills, especially in languages like Python and SQL, are essential for data engineering. These skills are used to manipulate data, automate processes, and build data pipelines.

Do I need to know Python to be a data engineer?

Yes. Python, R, and SQL are the three most common programming languages data engineers use. Many are also skilled in other languages such as C++ and Java.

Even if you already know R and SQL, you stand a much better chance of landing a lucrative data engineering job if you know rudimentary Python - because it’s widely used, both in the data industry and in business.

Do I need to download data engineering software to learn on Datacamp?

No, DataCamp provides everything you need to learn data engineering on our dedicated platform. You just need a browser and a reliable internet connection.

After you sign up for one of our online courses, you’ll complete your exercises and projects on our browser-based platform.

What are the key skills required for a data engineer?

Key skills for data engineers include proficiency in SQL, Python, data warehousing, ETL (extract, transform, load) processes, and cloud computing platforms like AWS, Azure, or Google Cloud.

How can online courses help you learn data engineering?

DataCamp's courses help you learn data engineering by providing structured exercises, hands-on projects, and access to expert instructors. Our data engineering courses offer you the flexibility to build up your skills at your own pace.

How do DataCamp's data engineering courses stay updated with industry trends?

We continuously update our courses so they reflect the latest technologies and best practices. We're also expanding our catalog of data engineering courses, projects and tutorials.

What is the difference between a data engineer and a data scientist?

Think of a race car team. The data engineer builds the engine and ensures the fuel (data) flows smoothly. The data scientist drives the car and decides strategy based on the data. Engineers focus on architecture, scalability, and reliability, while scientists focus on analysis, algorithms, and predictions.

What tools and frameworks will I learn?

You will master the modern data stack. This includes SQL for querying, Python for scripting, Git for version control, and Shell for command-line tasks. You will also get hands-on experience with specialized tools like Apache Airflow (orchestration), Apache Spark (big data), dbt (transformation), and cloud services on AWS and Azure.

Does DataCamp offer a Data Engineering Certification?

Yes. After completing the career track, you can take the Data Engineer Certification exams. This certification validates your ability to build pipelines, manage databases, and solve practical data problems, signaling to employers that you are job-ready.

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