Learn Python step by step with hands-on project, data analysis, and scripting for MLOps tasks
Description
This course is a practical introduction to Python for anyone interested in MLOps. It starts with the basics, such as variables, data types, conditionals, and working with lists, dictionaries, tuples, and sets. You’ll also learn about functions, how to structure them, and how to use arguments effectively.
The course gradually introduces more advanced topics like classes, object-oriented programming, and working with modules and Python scripts. It also covers how to manage your project environment using virtual environments and dependencies, which is an essential part of real-world development.
Once the foundation is set, the course moves into using Python for data handling. You’ll work with popular libraries like Pandas and NumPy to load, clean, manipulate, and analyze data. There are several hands-on lessons on exploratory data analysis, text processing in DataFrames, and visualizing data.
Toward the end of the course, you’ll apply what you’ve learned in a project based on the Titanic dataset. You’ll practice loading data, handling missing values, feature engineering, and performing analysis using Pandas. The project wraps up with writing the analysis into a Python script for easy reuse.
Finally, the course introduces you to argparse, a tool to create command-line interfaces. You’ll learn to build a simple CLI tool, giving you a small but useful taste of how Python is used in automation and scripting tasks, especially in MLOps workflows.
This course is beginner-friendly and aims to build your confidence with Python step by step.
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Total Students | 1548 |
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Duration | 4.5 hours |
Language | English (US) |
Original Price | |
Sale Price | 0 |
Number of lectures | 41 |
Number of quizzes | 0 |
Total Reviews | 3 |
Global Rating | 3.1666667 |
Instructor Name | CloudsArk Academy |
Course Insights (for Students)
Actionable, non-generic pointers before you enroll
Student Satisfaction
78% positive recent sentiment
Momentum
Steady interest
Time & Value
- Est. time: 4.5 hours
- Practical value: 5/10
Roadmap Fit
- Beginner → → Advanced
Key Takeaways for Learners
- Automation
Course Review Summary
Signals distilled from the latest Udemy reviews
What learners praise
Clear explanations and helpful examples.
Watch-outs
No consistent issues reported.
Difficulty
Best suited for
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