Machine Learning

Machine Learning

At M&M Institute, we offer comprehensive Machine Learning training designed to equip students with the knowledge and skills required to build intelligent, data-driven solutions. Our industry-focused curriculum covers Python Programming, Data Preprocessing, Machine Learning Algorithms, Predictive Analytics, Model Evaluation, Data Visualization, and AI Fundamentals. Through practical projects, real-world case studies, and hands-on experience with modern tools and technologies, students learn how to analyze data, develop machine learning models, and create solutions that drive innovation. Whether you are a beginner entering the field of Artificial Intelligence or a professional looking to enhance your technical expertise, our structured learning approach provides a strong foundation for careers in Machine Learning, Data Science, AI Engineering, Research, and advanced software development.

Python & Machine Learning

The Python & Machine Learning Program at M&M Institute is designed to take students from complete beginners to building real Artificial Intelligence applications. Through a carefully structured learning path, students master Python programming, data analysis, machine learning algorithms, neural networks, computer vision, and AI deployment. The course focuses heavily on practical implementation, real-world datasets, and portfolio-ready projects that prepare students for careers in Artificial Intelligence, Data Science, and Machine Learning Engineering.

Course Duration: 3 Months | Beginner to Advanced | Project-Based Learning | No Prior Experience Required

Learning Roadmap

Phase Topics Covered
Phase 1 - Basic Python Fundamentals, Variables, Data Types, Loops, Conditions, Functions, Dictionaries, File Handling, NumPy, Pandas, Data Cleaning, Data Visualization, Introduction to Machine Learning and Linear Regression.
Phase 2 - Intermediate Classification Models, Scikit-learn, Decision Trees, KNN, Feature Engineering, Feature Scaling, Model Evaluation, Text Processing, Spam Detection Systems, Pipelines and Model Optimization.
Phase 3 - Advanced Random Forest, XGBoost, Neural Networks, Deep Learning, CNNs, Image Classification, Transfer Learning, AI Deployment, Gradio Applications and Final Capstone Project.

Phase 1: Python & Machine Learning Foundations

Week Topics
Week 1 Variables, Data Types, Input/Output, Conditions, Loops, Lists, Basic Programming Logic
Week 2 Functions, Dictionaries, File Handling, Exception Handling
Week 3 NumPy Arrays, Pandas DataFrames, Data Cleaning, Data Manipulation
Week 4 Matplotlib, Data Visualization, Introduction to Machine Learning, Linear Regression
Week 5 End-to-End Project Development and Presentation
Mini Project: House Price Prediction System

Phase 2: Machine Learning Engineering

  • ➜ Object Oriented Programming (OOP)
  • ➜ Scikit-learn Framework
  • ➜ Classification Models
  • ➜ K-Nearest Neighbors (KNN)
  • ➜ Decision Trees
  • ➜ Feature Engineering
  • ➜ Feature Scaling
  • ➜ Cross Validation
  • ➜ Overfitting & Underfitting
  • ➜ Naive Bayes
  • ➜ Support Vector Machines
  • ➜ Hyperparameter Tuning
  • ➜ Text Processing & NLP Basics
  • ➜ Spam Classification Systems
Mini Project: Email & SMS Spam Detection System

Phase 3: Artificial Intelligence & Deep Learning

  • ➜ Random Forest
  • ➜ Gradient Boosting
  • ➜ XGBoost
  • ➜ Model Stacking
  • ➜ Neural Networks
  • ➜ Keras & TensorFlow
  • ➜ CNN Architecture
  • ➜ Image Classification
  • ➜ Transfer Learning
  • ➜ Deep Learning Optimization
  • ➜ Model Deployment
  • ➜ Gradio Web Applications
  • ➜ AI Product Development
Final Project: AI Image Classifier or Text Classification Application with Live Web Demo

What Students Will Achieve

🐍 Python Programming

Write clean, efficient and professional Python code from scratch.

📊 Data Analysis

Analyze and visualize real-world datasets using industry-standard tools.

🤖 Machine Learning

Build, train, evaluate and optimize predictive machine learning models.

🧠 Deep Learning

Create image classifiers and AI systems using neural networks.

🚀 AI Deployment

Deploy live AI applications with modern web interfaces.

💼 Portfolio Projects

Complete 3 major projects to showcase your skills to employers and clients.

Tools & Technologies

Core Technologies
Python 3 • NumPy • Pandas • Matplotlib • Scikit-Learn • TensorFlow • Keras • XGBoost • Gradio • Google Colab • Jupyter Notebook • VS Code • Kaggle Datasets

Career Opportunities

Machine Learning Engineer • AI Engineer • Data Scientist • Data Analyst • Research Engineer • Computer Vision Engineer • NLP Engineer • Python Developer • AI Consultant

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Instructors

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Abu Saiyaf Khan

Frontend Developer
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Abdul Moiz

MERN Stack Developer
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Jawad Hashmi

AI Engineer
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Asfand Yar Jalil

Backend Developer
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Tasadduf Bibi

SQA Analyst

Mock & Assessments

● Practice coding challenges with flexible timing for a real-world coding experience.
● Receive personalized feedback within 24 hours on coding tasks.
● Weekly mock project discussions for each major topic to refine skills.
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Interactive Sessions

● Live coding sessions with experienced web development instructors
● Multiple sessions throughout the day covering various aspects of web development
● Access to recorded lectures for reference and review

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Offline Practise Material

● Downloadable resources for offline learning convenience
● Study anytime, anywhere with our downloadable materials.
● Access offline resources for learning on the go.
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Personalized Feedback

● Code review and corrections tailored to your skill level and package
● Weekly one-on-one sessions for in-depth discussions
● Group discussions on best practices in web development

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