Whether delivered online or onsite, instructor-led live Python training courses provide hands-on practice to explore various aspects of the Python programming language. The curriculum covers Python fundamentals, advanced programming techniques, test automation, scripting and automation, as well as Python for Data Analysis and Big Data applications tailored to industries such as Finance, Banking, and Insurance.
NobleProg's Python training programs also include introductory and advanced courses focused on using Python libraries and frameworks for Machine Learning and Deep Learning.
Python training is available in two formats: "online live training" or "onsite live training." Online live training (also known as "remote live training") is conducted through an interactive remote desktop platform. Onsite live training can be hosted locally at customer premises or at NobleProg's corporate training centers in .
NobleProg -- Your Local Training Provider
Lyon, Swisslife Tower
NobleProg Lyon, 10 Place Charles Béraudier, Lyon, france, 69000
Located 200 meters far from the train station TGV, Swisslife Tower is today the most representative building of this quarter of Lyon. The Business Center offers you a perfect location for your training.
Gares TGV
100meters from Gare TGV Part-Dieu , porte du Rhône Exit
Aéroport
30 minutes from Lyon Saint Exupéry (Satolas)
Rhône Express from Saint Exupéry airport (Terminus Gare part-Dieu)
Python serves as the foundational language for developing and orchestrating autonomous AI agents. This course emphasizes practical implementation using contemporary SDKs and frameworks, such as LangChain and AutoGen, to build, connect, and manage agent workflows.
Delivered as an instructor-led live training (available online or onsite), this program is designed for intermediate-level backend, platform, and ML engineers who aim to implement and orchestrate autonomous agents using Python tooling and APIs.
Upon completion of this training, participants will be equipped to:
Set up and configure Python-based environments for agentic systems.
Leverage popular agent SDKs, including LangChain and AutoGen, to develop functional agents.
Integrate tools and APIs to expand agent capabilities.
Orchestrate multi-agent workflows and communication patterns.
Apply best practices for debugging, testing, and maintaining agentic codebases.
Course Format
Interactive lectures and discussions.
Hands-on programming exercises and live demonstrations.
Practical projects focused on building end-to-end agent workflows.
Course Customization Options
To request a customized training session for this course, please contact us to arrange.
This course delivers practical engineering methodologies for designing, building, testing, and deploying agentic (autonomous) systems using Python. It explores the agent loop, tool integrations, memory and state management, orchestration patterns, safety controls, and production considerations.
This instructor-led, live training (available online or onsite) is designed for intermediate to advanced ML engineers, AI developers, and software engineers seeking to build robust, production-ready autonomous agents using Python.
By the conclusion of this training, participants will be able to:
Design and implement the agent loop and decision-making workflows.
Integrate external tools and APIs to expand agent capabilities.
Implement short-term and long-term memory architectures for agents.
Coordinate multi-step orchestrations and agent composability.
Apply safety, access control, and observability best practices for deployed agents.
Course Format
Interactive lecture and discussion.
Hands-on labs building agents with Python and popular SDKs.
Project-based exercises that produce deployable prototypes.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
Artificial Intelligence with Python involves building intelligent systems by leveraging Python’s robust ecosystem of AI and machine learning libraries.
This instructor-led live training, available online or onsite, is designed for intermediate Python programmers looking to design, implement, and deploy AI solutions using Python.
Upon completing this training, participants will be able to:
Implement AI algorithms using Python’s core AI libraries.
Work with supervised, unsupervised, and reinforcement learning models.
Integrate AI solutions into existing applications and workflows.
Evaluate model performance and optimize for accuracy and efficiency.
Format of the Course also allows for the evaluation of participants.
Interactive lecture and discussion.
Extensive exercises and practice.
Hands-on implementation in a live-lab environment.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
This instructor-led, live training in Lyon (online or onsite) is designed for intermediate-level Python developers who aim to enhance their Python development experience using AWS Cloud9.
By the conclusion of this training, participants will be able to:
Set up and configure AWS Cloud9 for Python development.
Understand the AWS Cloud9 IDE interface and its features.
Write, debug, and deploy Python applications in AWS Cloud9.
Collaborate with other developers using the AWS Cloud9 platform.
Integrate AWS Cloud9 with other AWS services for advanced deployments.
This instructor-led, live training in Lyon (online or onsite) targets expert-level data analysts who wish to leverage Python's data analysis capabilities within Power BI, enhancing their ability to analyze and visualize data effectively.
By the end of this training, participants will be able to:
Learn how Python can be integrated into Power BI for data analysis.
Use Python scripts to load, clean, and preprocess data within the Power BI environment.
Enhance data visualization capabilities by creating custom and interactive visualizations using Python.
Acquire advanced data analysis skills using Python.
Python is a versatile programming language widely used for data manipulation, automation, and analytics. Libraries like Pandas and Polars provide powerful, practical tools for working with tabular data at scale.
This instructor-led, live training (online or onsite) is aimed at beginner-level to intermediate-level professionals who wish to apply Python for everyday data analysis, file processing, and process automation using Pandas and Polars.
By the end of this training, participants will be able to:
Leverage Python to read, transform, and write CSV and Excel files.
Execute common data cleaning and transformation tasks using Pandas and Polars.
Streamline repetitive data processes through Python scripting.
Package simple scripts into executable formats and adhere to project best practices.
Format of the Course also allows for the evaluation of participants.
Interactive coding demonstrations combined with concise lectures.
Practical exercises supported by guided code examples.
Real-world mini-projects focused on automating practical tasks.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
This intensive, hands-on course explores advanced Python techniques, engineering best practices, and widely used design patterns to help you build Python applications that are maintainable, testable, and high-performing. It places emphasis on modern tooling, type hinting, concurrency models, architectural patterns, and deployment-ready workflows.
Delivered as instructor-led live training (online or onsite), this program targets intermediate to advanced Python developers aiming to adopt professional practices and patterns for production-grade Python systems.
Upon completion of this training, participants will be able to:
Enhance code reliability by applying Python typing, dataclasses, and type-checking.
Structure robust applications using design patterns and architectural principles.
Correctly implement concurrency and parallelism utilizing asyncio and multiprocessing.
Develop well-tested code through the use of pytest, property-based testing, and CI pipelines.
Profile, optimize, and harden Python applications for production environments.
Package, distribute, and deploy Python projects employing modern tools and containers.
Course Format
Interactive lectures paired with concise demonstrations.
Daily hands-on labs and coding exercises.
A capstone mini-project that integrates patterns, testing, and deployment.
Course Customization Options
To request customized training or focus on specific areas (data, web, or infrastructure), please contact us to make arrangements.
This instructor-led, live training in Lyon (online or onsite) is aimed at beginner-level developers and data analysts who wish to learn Python programming from scratch using Google Colab.
By the end of this training, participants will be able to:
Grasp the fundamentals of the Python programming language.
Write and run Python code within the Google Colab environment.
Apply control structures to manage the flow of a Python program.
Develop functions to organize and reuse code effectively.
Explore and utilize basic libraries for Python programming.
This instructor-led live training, offered online or onsite, is intended for developers aiming to leverage the FARM (FastAPI, React, and MongoDB) stack to build dynamic, high-performance, and scalable web applications.
By the end of this training, participants will be able to:
Set up the necessary development environment that integrates FastAPI, React, and MongoDB.
Understand the key concepts, features, and benefits of the FARM stack.
Learn how to build REST APIs with FastAPI.
Learn how to design interactive applications with React.
Develop, test, and deploy applications (front end and back end) using the FARM stack.
This instructor-led, live training in Lyon (online or onsite) is aimed at beginner-level to intermediate-level and potentially advanced-level robotics developers who wish to learn how to use ROS to program mobile robots using Python.
By the end of this training, participants will be able to:
Set up a development environment that includes ROS, Python, and a mobile robot platform.
Create and run ROS nodes, topics, services, and actions using Python.
Use ROS tools and utilities to monitor and debug ROS applications.
Use ROS packages and libraries to perform common tasks for mobile robots.
This course is tailored for individuals eager to master the Python programming language. The curriculum focuses on the Python language itself, its core libraries, and the selection of the most valuable and widely adopted libraries within the Python community. Python is a powerhouse for businesses and is extensively utilized by scientists globally, ranking among the most popular programming languages today.
The course can be conducted using the latest Python 3.x version, featuring practical exercises that leverage the full capabilities of the language. It is compatible with any operating system, including all variations of UNIX (such as Linux and Mac OS X) as well as Microsoft Windows.
Approximately 70% of the course duration is dedicated to practical exercises, while the remaining 30% covers demonstrations and presentations. Participants are encouraged to engage in discussions and ask questions throughout the training.
Note: The training can be customized to meet specific requirements upon prior request before the scheduled course date.
This instructor-led, live training in Lyon (online or on-site) is designed for developers who want to master advanced Python programming techniques. The course covers how to leverage this versatile language to address challenges in areas such as distributed applications, data analysis and visualization, UI development, and maintenance scripting.
This course is tailored for individuals eager to master the Python programming language. The focus lies on the Python language itself, its core libraries, and the curation of the most valuable and effective libraries contributed by the Python community. Python is a cornerstone for businesses and a preferred tool for scientists globally, ranking among the most popular programming languages in use today.
This instructor-led, live training in Lyon is based on the popular book, "Automate the Boring Stuff with Python", by Al Sweigart. It is aimed at beginners and covers essential Python programming concepts through practical, hands-on exercises and discussions. The focus is on learning to write code to dramatically increase office productivity.
By the end of this training, participants will know how to program in Python and apply this new skill for:
Automating tasks by writing simple Python programs.
Writing programs that can do text pattern recognition with "regular expressions".
Programmatically generating and updating Excel spreadsheets.
Parsing PDFs and Word documents.
Crawling web sites and pulling information from online sources.
Writing programs that send out email notifications.
Use Python's debugging tools to quickly resolve bugs.
Programmatically controlling the mouse and keyboard to click and type for you.
In this instructor-led live training in Lyon, participants will master the most relevant and cutting-edge machine learning techniques in Python by building a series of demonstration applications that process image, music, text, and financial data.
By the end of this training, participants will be able to:
Implement machine learning algorithms and techniques to solve complex problems.
Apply deep learning and semi-supervised learning to applications involving image, music, text, and financial data.
Push Python algorithms to their maximum potential.
Utilize libraries and packages such as NumPy and Theano.
This instructor-led, live training in Lyon (online or onsite) is aimed at intermediate-level Python developers and data analysts who wish to enhance their skills in data analysis and manipulation using Pandas and NumPy.
By the end of this training, participants will be able to:
Set up a development environment that includes Python, Pandas, and NumPy.
Create a data analysis application using Pandas and NumPy.
Perform advanced data wrangling, sorting, and filtering operations.
Conduct aggregate operations and analyze time series data.
Visualize data using Matplotlib and other visualization libraries.
This course aims to equip participants with general proficiency in applying Machine Learning methods in real-world scenarios. By leveraging the Python programming language and its extensive ecosystem of libraries, and supported by a wide range of practical examples, the course demonstrates how to utilize the essential components of Machine Learning. Participants will learn to make informed data modeling decisions, interpret algorithm outputs, and validate results effectively.
Our objective is to empower you with the confidence to understand and apply the core tools of the Machine Learning toolkit, while helping you steer clear of common pitfalls associated with Data Science applications.
Python has become immensely popular in the financial sector. Adopted by top investment banks and hedge funds, it is used to develop a diverse array of financial applications, from core trading systems to risk management platforms.
Through this instructor-led live training, participants will learn how to leverage Python to create practical solutions for various financial challenges.
By the conclusion of this training, participants will be able to:
Grasp the fundamentals of Python programming
Download, install, and configure the most effective development tools for building financial applications in Python
Select and apply appropriate Python packages and programming techniques to organize, visualize, and analyze financial data from diverse sources (CSV, Excel, databases, web, etc.)
Build applications that address issues such as asset allocation, risk analysis, investment performance, and more
Troubleshoot, integrate, deploy, and optimize Python applications
Audience
Developers
Analysts
Quants
Course Format
A blend of lectures, discussions, exercises, and extensive hands-on practice
Note
This training is designed to address key challenges faced by finance professionals. If you have a specific topic, tool, or technique you would like to include or expand upon, please contact us to arrange.
This course offers a practical exploration of Data Science and AI through Python, empowering professionals with the capabilities to analyze data, construct machine learning models, and implement AI-powered applications within business environments. It addresses CRISP-DM methodologies, statistical analysis, supervised and unsupervised learning, deep learning with Tensorflow, natural language processing, big data analytics via Spark, and data-driven storytelling. This program is ideal for beginners aiming to obtain a Python data science certification and acquire career-ready analytics skills.
This course empowers programmers and data analysts with the essential techniques needed to construct machine learning solutions entirely from scratch using Python. It explores the core principles of supervised learning (including classification and regression) and unsupervised learning (such as clustering and anomaly detection), alongside advanced neural network architectures. Participants will examine proven methods for leveraging scikit-learn, Apache Spark MLlib, and Jupyter notebooks to facilitate hands-on AI development. The curriculum supports professionals in implementing practical ML models, assessing algorithmic limitations, and completing applied projects designed for real-world problem-solving.
Selenium is an open-source framework designed for automating web application testing across various browsers. With the release of Selenium 4, users gain access to enhanced WebDriver APIs, native relative locators, and improved grid support. Python is chosen for its simplicity and robust integration with testing frameworks such as Pytest, making it an excellent choice for building scalable and maintainable test automation suites.
This instructor-led live training, available online or onsite, targets beginner to intermediate testers and developers who want to leverage Selenium with Python to automate web application testing in real-world scenarios.
Upon completion of this training, participants will be able to:
Install and configure Selenium with Python within a test environment.
Develop robust test automation scripts using Selenium WebDriver and Pytest.
Apply the Page Object Model (POM) to create maintainable test frameworks.
Execute tests across multiple browsers using Selenium Grid.
Integrate automated tests with CI/CD pipelines.
Troubleshoot common issues and implement best practices to ensure automation stability.
Course Format
Interactive lectures and discussions.
Numerous exercises and practical sessions.
Hands-on implementation in a live-lab environment.
Customization Options
To arrange customized training for this course, please contact us.
This instructor-led live training in Lyon (online or onsite) is designed for Matlab users who wish to explore or transition to Python for data analytics and visualization.
Upon completion of this training, participants will be able to:
Install and configure a Python development environment.
Understand the differences and similarities between Matlab and Python syntax.
Use Python to extract insights from various datasets.
This instructor-led, live training in Lyon (online or onsite) is aimed at persons who wish to learn just enough Python to begin crunching numbers from sales data, traffic analytics, customer interactions, etc..
By the end of this training, participants will be able to:
Install and configure the necessary software, libraries and development environment to begin writing Python code for data analysis.
Analyze data from sources such as Excel, CSV, JSON files and databases.
Clean data to improve its usefulness before analyzing it.
Perform simple statistical analysis.
Generate reports that present the desired data in just the right format, from straight numbers to data visualizations.
Gain valuable insight from data, including trends in performance, problematic areas.
This practical training program is tailored for data engineering professionals seeking to develop applied skills in artificial intelligence, Python, and large language models. The curriculum emphasizes real-world use cases, including model utilization, prompt engineering, and the creation of AI-driven solutions. Participants will engage in progressive exercises that advance from foundational concepts to the construction of deployable AI workflows.
Training Format
• In-person classroom instruction
• Instructor-led sessions with guided practice
• Interactive discussions and real-world case studies
• Daily hands-on exercises
Course Objectives
• Grasp core AI and machine learning concepts applicable to modern solutions
• Enhance Python proficiency for AI development and data workflows
• Comprehend the mechanics of large language models and learn to leverage them effectively
• Design and optimize prompts to ensure reliable outputs
• Develop end-to-end AI solutions utilizing APIs and frameworks
• Integrate AI capabilities into data engineering pipelines
This instructor-led live training in Lyon (online or onsite) targets developers who wish to use FastAPI with Python to build, test, and deploy RESTful APIs more easily and quickly.
By the end of this training, participants will be able to:
Set up the necessary development environment to develop APIs with Python and FastAPI.
Create APIs quicker and easier using the FastAPI library.
Learn how to create data models and schemas based on Pydantic and OpenAPI.
Connect APIs to a database using SQLAlchemy.
Implement security and authentication in APIs using the FastAPI tools.
Build container images and deploy web APIs to a cloud server.
This instructor-led, live training in Lyon (online or onsite) is designed for network engineers who want to maintain, manage, and design computer networks using Python.
By the end of this training, participants will be able to:
Optimize and leverage Paramiko, Netmiko, Napalm, Telnet, and pyntc for network automation with Python.
Master multi-threading and multiprocessing in network automation.
This instructor-led, live training in Lyon (online or onsite) is aimed at business professionals and data analysts with intermediate Python skills who wish to apply Python to automate workflows, analyze business data, and generate dynamic Excel-based reports.
Computer Vision is a discipline focused on the automatic extraction, analysis, and comprehension of valuable insights from digital media. Python, a high-level programming language renowned for its clean syntax and readability, serves as the foundation for this course.
Through this instructor-led live training, participants will master the fundamentals of Computer Vision by developing a series of simple applications using Python.
Upon completion of this training, participants will be able to:
Grasp the core principles of Computer Vision
Utilize Python to execute Computer Vision tasks
Develop custom systems for face, object, and motion detection
Audience
Python programmers seeking to specialize in Computer Vision
Format of the course
A blend of lectures, discussions, exercises, and extensive hands-on practice
This practical course is tailored for Unix and shell users aiming to upgrade their automation skills through the power of Python. While shell scripting is effective for basic tasks, Python offers superior flexibility, readability, and scalability, making it the ideal choice for complex automation, system administration, and DevOps workflows.
The number of users is correct. The trainer delivered the information with enthusiasm.
Alberto Rivas - SEG AUTOMOTIVE SPAIN, S.A.U.
Course - Python Programming - 4 days
The adaptation of exos to our context and the consideration of our request
Amel Guetat - EURO-INFORMATION DEVELOPPEMENTS
Course - Fraud Detection with Python and TensorFlow
Machine Translated
Hands-on exercises related to content really helps to understand more about each topic. Also, style of start class with lecture and continue with hands-on exercise is good and helpful to relate with the lecture that presented earlier.
Nazeera Mohamad - Ministry of Science, Technology and Innovation
Course - Introduction to Data Science and AI using Python
Concrete, hands-on exercises that were relevant to our core business. Having a trainer with a scientific background was a real asset because we could delve into deeper discussions, not just about programming but also about science and how to combine the two.
The practical sessions in Jupyter Notebook format were interesting.
Victor - Vermon
Course - Python for Matlab Users
Machine Translated
Got to know a lot of new thngs.
Roland - Diehl Aviation
Course - Advanced Python - 4 Days
The trainer is a very well-disposed person and has a lot of knowledge of the topic. He was always there to ask our questions and to help out with our doubts
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