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Course Overview

Learn the fundamentals of machine learning (ML) and build a strong foundation in supervised, unsupervised, and reinforcement learning. This comprehensive course will equip you with the tools and techniques needed to analyze data, train predictive models, and apply ML concepts to real-world problems.

Why to

Join This Course

Learn industry-relevant machine learning techniques and tools.

Work on hands-on projects to strengthen your understanding of ML workflows.

Receive industry-recognized certification to showcase your expertise.

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  • Learn core ML algorithms and techniques.
  • Work on real-world datasets and projects.
  • Master Python libraries like Scikit-Learn, TensorFlow, and Pandas.
  • Understand model evaluation, optimization, and deployment.
  • Build AI-driven applications with hands-on coding exercises.

Course Curriculum

What is Machine Learning?

Types of ML: Supervised, Unsupervised, and Reinforcement Learning.

Applications of ML in different industries.

Data cleaning, normalization, and transformation.

Handling missing values and outliers.

Feature engineering and selection.

Linear and Logistic Regression.

Decision Trees, Random Forests, and Gradient Boosting.

Support Vector Machines (SVM) and Neural Networks.

Model evaluation: accuracy, precision, recall, and F1 score.

Clustering algorithms: K-Means, DBSCAN, and Hierarchical Clustering.

Dimensionality reduction: Principal Component Analysis (PCA).

Introduction to Artificial Neural Networks (ANNs).

Basics of Deep Learning and TensorFlow.

Building Convolutional Neural Networks (CNNs) for image recognition.

Fundamentals of reinforcement learning.

Markov Decision Processes.

Applications in robotics and game development.

Introduction to time series data.

Forecasting techniques using ARIMA and LSTMs.

Real-world applications: stock price prediction, weather forecasting.

Text preprocessing techniques: tokenization, stemming, and lemmatization.

Sentiment analysis and topic modeling.

Introduction to transformers and BERT models.

Using Flask/Django for deploying ML models.

Tools like Docker and Kubernetes for scaling.

Model monitoring and optimization.

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Get General Answers

FAQ Questions

Machine Learning is a branch of AI that enables systems to learn and improve from experience without being explicitly programmed.
Yes, basic knowledge of Python is recommended to make the most out of this course.
You’ll learn Python, Scikit-learn, TensorFlow, Pandas, NumPy, and more.
Yes, it starts with the basics of ML and progresses to advanced concepts.
You'll work on projects like house price prediction, spam detection, customer segmentation, and sentiment analysis.
Yes, the course includes problem-solving techniques and real-world projects to enhance your interview preparation.
Yes, you'll receive a certification upon successful completion.
A basic understanding of Python and statistics is helpful but not mandatory.
Yes, the course provides access to industry-standard datasets for hands-on practice.
Absolutely! The course is designed to provide a strong foundation in ML, which is essential for data science roles.
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