LIQD - Long Tail International

Machine Learning With AI

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Machine Learning Course with AI

  1. Introduction to AI and Machine Learning
    Understand AI vs ML vs Deep Learning, real-world applications, and key terminologies.

  2. Types of Machine Learning
    Covers supervised, unsupervised, semi-supervised, and reinforcement learning.

  3. Data Collection and Preprocessing
    Data wrangling, cleaning, normalization, feature engineering, and splitting datasets.

  4. Exploratory Data Analysis (EDA)
    Visualizing and understanding data distributions, correlations, and outliers.

  5. Supervised Learning – Regression Models
    Linear regression, decision trees, evaluation metrics (MAE, RMSE, etc.).

  6. Supervised Learning – Classification Models
    Logistic regression, k-NN, SVM, Naive Bayes, evaluation metrics (accuracy, precision, recall, F1).

  7. Unsupervised Learning – Clustering and Dimensionality Reduction
    k-means, hierarchical clustering, PCA, t-SNE.

  8. Model Evaluation and Validation
    Cross-validation, confusion matrix, bias-variance trade-off, overfitting vs underfitting.

  9. Feature Selection and Engineering
    Techniques like RFE, mutual information, domain-driven feature creation.

  10. Ensemble Methods
    Bagging, boosting, random forests, gradient boosting, stacking.

  11. Neural Networks and Deep Learning
    Perceptron, feedforward networks, backpropagation, activation functions.

  12. Convolutional and Recurrent Neural Networks
    CNNs for images, RNNs and LSTMs for sequences and time series.

  13. Natural Language Processing (NLP)
    Text preprocessing, TF-IDF, word embeddings, transformers (e.g., BERT).

  14. Model Deployment and Production
    Saving models, using Flask/FastAPI, cloud deployment (AWS, GCP), CI/CD basics.

  15. Ethics, Explainability, and Responsible AI
    Fairness, bias, interpretability (SHAP, LIME), data privacy, regulatory concerns.

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