Data Science & Deep Learning for Business™ 20 Case Studies

Data Science & Deep Learning for Business™ 20 Case Studies

Data Science & Deep Learning for Business™ 20 Case Studies
Free Coupon Discount - Data Science & Deep Learning for Business™ 20 Case Studies, Use Python for Data Analysis, Data Science in Marketing & Retail, Recommendations, Forecasts, Customer Clustering & NLP
Created by Rajeev D. Ratan
English [Auto-generated]


What you'll learn
  • Understand the value of data for businesses
  • Learn to use Python, Pandas, Matplotlib & Seaborn, SkLearn, Keras, Tensorflow, NLTK, Prophet, PySpark, MLLib and more!
  • Apply Data Science in Marketing to improve Conversion Rates, Predict Engagement and Customer Life Time Value
  • Machine Learning from Linear Regressions (polynomial & multivariate), K-NNs, Logistic Regressions, SVMs, Decision Trees & Random Forests
  • Unsupervised Machine Learning with K-Means, Mean-Shift, DBSCAN, EM with GMMs, PCA and t-SNE
  • Build a Product Recommendation Tool using collaborative & item/content based
  • Hypothesis Testing and A/B Testing - Understand t-tests and p values
  • Natural Langauge Processing - Summarize Reviews, Sentiment Analysis on Airline Tweets & Spam Detection
  • To use Google Colab's iPython notebooks for fast, relaible cloud based data science work
  • Deploy your Machine Learning Models on the cloud using AWS
  • Advanced Pandas techniques from Vectorizing to Parallel Processsng
  • Statistical Theory, Probability Theory, Distributions, Exploratory Data Analysis
  • Predicting Employee Churn, Insurance Premiums, Airbnb prices, credit card fraud and who to target for donations
  • Big Data skills using PySpark for Data Manipulation and Machine Learning
  • Cluster customers based on Exploratory Data Analysis, then using K-Means to detect customer segments
  • Build a Stock Trading Bot using re-inforement learning
  • Apply Data Science & Analytics to Retail, performing segementation, analyzing trends, determining valuable customers and more!
  • Requirements
  • Familiar with basic programming concepts
  • Highschool level math knowledge
  • Broadband Internet connection

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