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    Mourad
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    Mastering Large Language Models (LLMs) with Langchain: Building Chatbots and Document-based QA Systems

    In today's rapidly evolving technological landscape, Large Language Models (LLMs) have emerged as a groundbreaking innovation, transforming the way we interact with machines and process vast amounts of textual information. This comprehensive course is designed to equip participants with the skills and knowledge to harness the power of LLMs for creating advanced chatbots and document-based question-answering (QA) systems.

    #### Course Objectives:
    - **Understanding LLMs:** Gain a deep understanding of Large Language Models, their architecture, and capabilities.
    - **Langchain Framework:** Learn how to use Langchain, a powerful framework for building LLM-powered applications.
    - **Building Chatbots:** Develop sophisticated chatbots capable of natural language understanding and generation.
    - **Document-based QA Systems:** Create robust QA systems that can accurately retrieve and process information from documents.
    - **Hands-On Projects:** Apply your learning through practical, hands-on projects and real-world scenarios.

    #### Course Outline:
    1. **Introduction to Large Language Models:**
    - Overview of LLMs and their significance in AI
    - Key concepts and components of LLMs
    - Current trends and advancements in LLM technology

    2. **Getting Started with Langchain:**
    - Introduction to the Langchain framework
    - Setting up the development environment
    - Understanding Langchain's core features and functionalities

    3. **Building Your First Chatbot:**
    - Designing conversational interfaces
    - Implementing natural language understanding (NLU) and natural language generation (NLG)
    - Integrating LLMs into your chatbot

    4. **Advanced Chatbot Development:**
    - Enhancing chatbot capabilities with context management
    - Handling multi-turn conversations
    - Deploying and maintaining chatbots in production environments

    5. **Document-based Question Answering Systems:**
    - Understanding document processing and retrieval
    - Building QA systems using LLMs
    - Techniques for improving accuracy and relevance in QA systems

    6. **Practical Applications and Case Studies:**
    - Real-world applications of chatbots and QA systems
    - Case studies highlighting successful implementations
    - Best practices and lessons learned

    7. **Hands-On Projects:**
    - Developing a custom chatbot for a specific use case
    - Building a document-based QA system for a chosen domain
    - Integrating both systems into a cohesive application

    8. **Future Directions and Advanced Topics:**
    - Exploring advanced features of LLMs and Langchain
    - Emerging trends and future developments in LLMs
    - Preparing for further learning and specialization

    #### Who Should Enroll:
    - Aspiring AI developers and data scientists
    - Professionals seeking to enhance their skills in LLMs and chatbot development
    - Enthusiasts interested in leveraging LLMs for innovative applications

    #### Prerequisites:
    - Basic understanding of programming concepts
    - Familiarity with Python is recommended but not required

    #### Course Outcomes:
    By the end of this course, you will be able to:
    - Understand and utilize Large Language Models effectively
    - Develop advanced chatbots using Langchain and LLMs
    - Build robust document-based QA systems
    - Apply your knowledge to real-world projects and scenarios
    - Stay abreast of the latest advancements in LLM technology

    Join us in "Mastering Large Language Models with Langchain: Building Chatbots and Document-based QA Systems" to unlock the potential of LLMs and create innovative AI solutions that transform how we interact with and process textual information.

    Extra information

    Delve deep into both theory and practice as you immerse yourself in the world of LLMs and the innovative Langchain framework.

    Location

    Online via webcam

    General info

    suitcase iconSkills:
    Age:
    Children (7-12 years old)
    Teenagers (13-17 years old)
    Adults (18-64 years old)
    Seniors (65+ years old)
    Student level:
    Beginner
    Intermediate
    Advanced
    Duration:
    60 minutes
    The class is taught in:English, Arabic, French

    About Me

    Programming with several programming languages, such as C, JAVA, and Python.
    Data scientist: extracting knowledge from structured, semi-structured, and unstructured data.
    Teach programming languages and data science.
    Five years of experience in teaching.

    Education

    Ph.D. in Artificial Intelligence Multi-modal from Sidi Mohamed Ben Abdellah University.
    Master's degree in Big Data analytics and smart systems, from Sidi Mohamed Ben Abdellah University.
    Bachelor's degree in Computer Science and Mathematics from Ibn Zohr University

    Experience / Qualifications

    Five years of experience in teaching.
    Freelancer in several programming projects.
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    Embark on a comprehensive journey through Artificial Intelligence and Data Science with our course, "AI and Data Science: The Steps to Handle a Project." This course is meticulously designed for individuals who aspire to become proficient in managing and executing AI and data science projects from inception to deployment. #### Course Objectives: - **Foundational Knowledge:** Understand the core principles of AI and data science, including key concepts, methodologies, and tools. - **Project Lifecycle Management:** Learn the systematic approach to handling AI and data science projects through each project lifecycle phase. - **Hands-On Experience:** Gain practical experience through real-world projects and case studies. - **Advanced Techniques:** Explore advanced techniques and algorithms in AI and data science. - **Ethical and Responsible AI:** Understand the ethical implications and best practices for responsible AI development and deployment. #### Course Outline: 1. **Introduction to AI and Data Science:** - Overview of AI and data science - Key concepts and terminologies - Applications and industry use cases 2. **Project Scoping and Planning:** - Defining the problem statement - Identifying objectives and success metrics - Project planning and timeline management 3. **Data Collection and Preprocessing:** - Data collection methods and sources - Data cleaning, transformation, and integration - Exploratory data analysis and visualization 4. **Model Development:** - Selection of appropriate algorithms and models - Training, validation, and testing of models - Hyperparameter tuning and optimization 5. **Model Evaluation and Validation:** - Evaluation metrics and performance analysis - Cross-validation techniques - Model interpretability and explainability 6. **Deployment and Monitoring:** - Model deployment strategies and tools - Monitoring and maintaining model performance - Continuous integration and continuous deployment (CI/CD) 7. **Project Documentation and Presentation:** - Creating comprehensive project documentation - Presenting findings and insights to stakeholders - Effective communication of technical results 8. **Ethics and Best Practices:** - Ethical considerations in AI and data science - Ensuring fairness, accountability, and transparency - Best practices for sustainable and responsible AI #### Course Outcomes: By the end of this course, you will be able to: - Manage and execute AI and data science projects from start to finish - Collect, preprocess, and analyze data effectively - Develop, evaluate, and deploy robust AI models - Communicate insights and results clearly to stakeholders - Apply ethical and responsible practices in AI development Join us to master the end-to-end process of handling AI and data science projects and become a proficient practitioner capable of delivering impactful solutions.
    Welcome to "Machine Learning with Python and PyTorch: Practical Hands-on Training," a beginner-friendly course designed to introduce you to the exciting world of machine learning using two of the most popular tools in the industry: Python and PyTorch. This course focuses on practical, hands-on learning, ensuring you gain the skills needed to start building your own machine learning models. #### Course Objectives: - **Introduction to Machine Learning:** Understand the basic concepts and principles of machine learning. - **Python Programming for Machine Learning:** Learn Python programming essentials tailored for machine learning applications. - **PyTorch Fundamentals:** Get acquainted with PyTorch, a powerful and flexible deep learning framework. - **Practical Experience:** Gain hands-on experience by working on real-world projects and exercises. - **Model Building and Evaluation:** Learn to build, train, and evaluate various machine learning models. #### Course Outline: 1. **Introduction to Machine Learning:** - What is machine learning? - Types of machine learning: supervised, unsupervised, and reinforcement learning - Applications of machine learning in different industries 2. **Python Programming Essentials:** - Introduction to Python programming - Data structures and libraries (NumPy, Pandas) - Basic data manipulation and visualization (Matplotlib, Seaborn) 3. **Getting Started with PyTorch:** - Introduction to PyTorch and its ecosystem - Setting up your environment and installation - Understanding tensors and basic tensor operations 4. **Building Your First Machine Learning Model:** - Data preprocessing and preparation - Splitting data into training and testing sets - Building a simple linear regression model with PyTorch 5. **Training and Evaluating Models:** - Understanding the training process - Loss functions and optimization algorithms - Evaluating model performance using metrics 6. **Advanced Models and Techniques:** - Introduction to neural networks - Building and training a neural network with PyTorch - Exploring convolutional neural networks (CNNs) for image classification 7. **Practical Projects and Applications:** - Hands-on projects to reinforce learning - Real-world applications and case studies - Tips and best practices for successful machine learning projects 8. **Next Steps in Your Machine Learning Journey:** - Exploring further learning resources - Joining machine learning communities and forums - Preparing for advanced topics and courses #### Who Should Enroll: - Beginners with no prior experience in machine learning - Individuals interested in learning Python programming - Aspiring data scientists and machine learning enthusiasts #### Prerequisites: - Basic computer literacy and familiarity with high school-level mathematics - No prior programming or machine learning experience required #### Course Outcomes: By the end of this course, you will be able to: - Understand the fundamental concepts of machine learning - Write and execute Python code for machine learning tasks - Use PyTorch to build, train, and evaluate machine learning models - Apply your knowledge to real-world problems and projects - Take the next steps in advancing your machine learning skills Join us in "Machine Learning with Python and PyTorch: Practical Hands-on Training" to embark on your journey into the fascinating world of machine learning. Gain the skills and confidence needed to build and deploy your own models, and start making an impact with machine learning today.
    ### Course Description: Prompt Engineering using Python and LLMs Unlock the power of Large Language Models (LLMs) with our beginner-friendly course, "Prompt Engineering using Python and LLMs." This course is designed to introduce you to the fundamentals of prompt engineering, equipping you with the skills needed to craft effective prompts and leverage the capabilities of LLMs for various applications. #### Course Objectives: - **Introduction to Prompt Engineering:** Understand the basics of prompt engineering and its significance in utilizing LLMs. - **Python for Prompt Engineering:** Learn essential Python programming skills tailored for prompt engineering tasks. - **Harnessing LLMs:** Discover how to use LLMs to generate, manipulate, and analyze text based on your crafted prompts. - **Practical Applications:** Apply your knowledge through hands-on projects and real-world scenarios to build practical solutions. #### Course Outline: 1. **Introduction to Prompt Engineering:** - What is prompt engineering? - Importance and applications of prompt engineering - Overview of Large Language Models (LLMs) and their capabilities 2. **Python Essentials for Prompt Engineering:** - Basic Python programming concepts - Key Python libraries for text processing - Setting up your development environment 3. **Crafting Effective Prompts:** - Understanding prompt structure and components - Techniques for creating clear and concise prompts - Examples of effective prompts for various tasks 4. **Interacting with LLMs:** - Introduction to popular LLMs (eg, GPT-3, GPT-4) - Using APIs to interact with LLMs - Generating text responses based on your prompts 5. **Advanced Prompt Techniques:** - Handling complex queries and multi-step instructions - Refining prompts for improved accuracy and relevance - Using prompts for different applications (eg, content generation, data analysis) 6. **Practical Projects:** - Building a text generation application - Creating a chatbot using prompt engineering techniques - Developing a data extraction tool using LLMs 7. **Ethical Considerations and Best Practices:** - Ensuring ethical use of LLMs and prompt engineering - Best practices for responsible AI development - Avoiding common pitfalls and challenges 8. **Future Directions and Further Learning:** - Exploring advanced topics in prompt engineering - Keeping up with the latest advancements in LLMs - Resources for continued learning and development #### Who Should Enroll: - Beginners with no prior experience in prompt engineering or LLMs - Individuals interested in learning Python programming - Aspiring AI enthusiasts looking to explore the potential of LLMs #### Prerequisites: - Basic computer literacy and familiarity with high school-level mathematics - No prior programming or AI experience required #### Race Outcomes: By the end of this course, you will be able to: - Understand the fundamentals of prompt engineering - Write and execute Python code for prompt engineering tasks - Create effective prompts to interact with LLMs - Develop practical applications using LLMs - Apply ethical considerations and best practices in your work Join us in "Prompt Engineering using Python and LLMs" to embark on your journey into the world of AI and prompt engineering. Gain the skills and confidence needed to create impactful solutions and unlock the full potential of Large Language Models.

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    Python is easier to learn and understand than other programming languages. Its instructions are simple and easily readable with a clean syntax which doesn't really involve complex coding. However simple and easy to learn, Python can be used to create the highly interactive programs. This course aims to engage learners with little or even no previous programming experience. The programme for beginners starts with an introduction to the basic fundamentals of Python (expressions, conditionals, and functions). Then, as the course progresses, learners will be able to combine Python commands and modules like Pygame, Matplotlib, Numpy and Tkinter to implement their ideas and develop skills like computational thinking, creativity and problem solving. The content and pace of the course is adapted to the age and needs of the learners.

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    🚀 Advanced Courses – 🔬 Physics from High School to University & 🐍 Advanced Python Programming Focused on Efficiency!
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Interactive Online Learning: Dynamic online courses with screen sharing and audio interaction for enjoyable and engaging learning. Concrete Projects and Practical Applications: Development of practical projects to implement theoretical concepts. Intensive Preparation for Exams and Competitions: Rigorous training with complex exercises and exam simulations to guarantee your success. Flexibility and Comfort: Learn from home, according to your schedule, without having to travel. 🔬 Advanced Physics – From High School to University This module offers a complete and in-depth program to prepare you for demanding secondary school exams, preparatory classes and scientific university courses: 1. Secondary Physics (High School and Preparatory Classes) ⚙️ Classical Mechanics: Kinematics, dynamics, Newton's laws, energy and work, oscillations. 🌊 Waves and Vibrations: Wave propagation, interference, diffraction, acoustics. ⚡ Electricity and Magnetism: Electric circuits, electrostatics, magnetostatics, electromagnetic induction. 🔦 Optics: Geometric optics (lenses, mirrors), wave optics (interference, diffraction). 🌡️ Thermodynamics: Laws of thermodynamics, thermodynamic cycles, entropy, changes of state. 2. University and Advanced Physics 🔄 Analytical Mechanics: Lagrangian, Hamiltonian, and generalized coordinates. 🌐 Advanced Electromagnetism: Maxwell's equations and the propagation of electromagnetic waves. 🧪 Quantum Physics: The postulates of quantum mechanics, the wave function, and the Schrödinger equation. ☢️ Nuclear and Particle Physics: The structure of the nucleus, radioactivity, and fundamental interactions. 🌌 Special Relativity: Lorentz transformations, time dilation, and length contraction. 3. 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Mastering Advanced Concepts in Python 🔠 Advanced Syntax and Best Practices: Deepening of Python concepts. 📦 Object-Oriented Programming (OOP): Abstract classes, interfaces, and design patterns in Python. 🔄 Functional Programming: Using lambda, map, filter, reduce, generators and iterators. ⚡ Asynchronous Programming: Implementing asyncio for fast and responsive applications. 🧪 Unit Testing and Code Quality: Use of pytest, code coverage, and CI/CD. 2. Performance Optimization 🚀 Algorithm Optimization: Analysis of algorithmic complexity and use of efficient data structures. ⚙️ Profiling and Debugging: Performance evaluation with cProfile and code improvement. 🔒 Security and Robustness: Writing secure code and handling exceptions appropriately. 3. Practical Projects and Advanced Applications 🌐 Web Applications: Building high-performance web applications using Flask and FastAPI. 📊 Data Science and Machine Learning: Exploitation of Pandas, NumPy, Scikit-learn and TensorFlow. 🕸️ Advanced Web Scraping: Complex data extraction using BeautifulSoup and Selenium. 🤖 Automation and Efficient Scripts: Automation of tasks and development of efficient scripts. 🧑‍🏫 Methodology and Pedagogical Approach: Learning by doing: Each theoretical concept is directly implemented through practical exercises. Interactive Online Teaching: Using audio and screen sharing for seamless communication and dynamic learning. Personalized monitoring: Regular support to assess your progress and answer all your questions. Concrete projects: Development of complete projects to apply your programming skills. Motivation and Confidence: A positive and encouraging approach to build your confidence in your abilities. 🎓 For whom? This course is intended for: - High school and preparatory class students who aspire to academic excellence. - University students in science and computer science wishing to deepen their knowledge. - Candidates for scientific competitions who are preparing for physics and programming tests. - Developers looking to improve their advanced Python skills. - Researchers and engineers who use Python for complex scientific applications. 🔔 Register now! Don't miss the opportunity to master advanced physics while developing skills in optimized and efficient Python. Join our program "🚀 Advanced Courses - 🔬 Physics from High School to University & 🐍 Advanced Python Programming Focused on Efficiency!" and progress at your own pace with confidence and motivation!

    Mahnoor
    AI for Complete Beginners: A Practical Guide to Understanding and Building AI
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