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Introduction to Python Programming and to Red Hat OpenShift AI
Course Description
Overview
Organizations collect and store vast amounts of information from multiple sources. With Red Hat OpenShift AI, organizations have a platform ready to analyze data, visualize trends and patterns, and predict future business outcomes by using machine learning and artificial intelligence algorithms.Course Description
An introduction to Python programming, and creating and managing AI/ML workloads with Red Hat OpenShift AI.
Python is a popular programming language used by system administrators, data scientists, and developers to create applications, perform statistical analysis, and train AI/ML models. This course introduces the Python language and teaches the basics of using Red Hat OpenShift AI for AI/ML workloads. This course helps students build core skills such as describing the Red Hat OpenShift AI architecture, and organizing, executing and testing AI/ML code through hands-on experience. These skills can be applied in all versions of Red Hat OpenShift AI.
Note: This course is offered as a 4 day in person class or a 5 day virtual class. Durations may vary based on the delivery.
Objectives
- Basics of Python syntax, functions and data types
- How to debug Python scripts using the Python debugger (pdb)
- Use Python data structures like dictionaries, sets, tuples and lists to handle compound data
- Learn Object-oriented programming in Python and Exception Handling
- How to read and write files in Python and parse JSON data
- How to effectively structure large Python programs using modules and namespaces
- Introduction to Red Hat OpenShift AI
- Data Science Projects
- Jupyter Notebooks
Audience
- Data scientists and AI practitioners who want to use Red Hat OpenShift AI to build and train ML models
- Developers who want to build and integrate AI/ML enabled applications
- MLOps engineers responsible for installing, configuring, deploying, and monitoring AI/ML applications on Red Hat OpenShift AI
Prerequisites
- Experience with Git is required
- Experience in Red Hat OpenShift is required, or completion of the Red Hat OpenShift Developer II: Building and Deploying Cloud-native Applications (DO288) course
- Basic experience in the AI, data science, and machine learning fields is recommended
- No ILT classroom will be available
Topics
- Introduction to Python and setting up the developer environment
- Explore the basic syntax and semantics of Python
- Understand the basic control flow features and operators
- Write programs that manipulate compound data using lists, sets, tuples and dictionaries
- Decompose your programs into composable functions
- Organize your code using Modules for flexibility and reuse
- Explore Object Oriented Programming (OOP) with classes and objects
- Handle runtime errors using Exceptions
- Implement programs that read and write files
- Use advanced data structures like generators and comprehensions to reduce boilerplate code
- Read and write JSON data
- Debug Python programs using the Python debugger (pdb)
- Identify the main features of Red Hat OpenShift AI, and describe the architecture and components of Red Hat AI.
- Organize code and configuration by using data science projects, workbenches, and data connections
- Use Jupyter notebooks to execute and test code interactively
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