Business Online Course by Udemy, On Sale Here
Use Data Science & Statistics To Solve Business Problems & Gain Insights Into Everyday Problems With 35+ Case Studies
An excellent training about Business Analytics & Intelligence
Data Science, Analytics & AI for Business & the Real World
Data Science, Analytics & AI for Business & the Real World 2020This is a practical course, the course Iwish Ihad when Ifirst started learning Data Science. It focuses on understanding all the basic theory and programming skills required as a Data Scientist, but the best part is that it features 35+ Practical Case Studies covering so many common business problems faced by Data Scientists in the real world. Right now, even in spite of the Covid-19 economic contraction, traditional businesses are hiring Data Scientists in droves! And they expect new hires to have the ability to apply Data Science solutions to solve their problems. Data Scientists who can do this will prove to be one of the most valuable assets in business over the next few decades!”Data Scientist has become the top job in the US for the last 4 years running!” according to Harvard Business Review & Glassdoor. However, Data Science has a difficult learning curve – How does one even get started in this industry awash with mystique, confusion, impossible-looking mathematics, and code? Even if you get your feet wet, applying your newfound Data Science knowledge to a real-world problem is even more confusing. This course seeks to fill all those gaps in knowledge that scare off beginners and simultaneously apply your knowledge of Data Science andDeep Learning to real-world business problems. This course has a comprehensive syllabus that tackles all the major components of Data Science knowledge. Our Complete 2020 Data Science Learning path includes: Using Data Science to Solve Common Business Problems The Modern Tools of a Data Scientist – Python, Pandas, Scikit-learn, NumPy, Keras, prophet, statsmod, scipy and more! Statistics for Data Science in Detail – Sampling, Distributions, Normal Distribution, Descriptive Statistics, Correlation and Covariance, Probability Significance Testing, and Hypothesis Testing. Visualization Theory for Data Science and Analytics using Seaborn, Matplotlib & Plotly (Manipulate Data and Create Information Captivating Visualizations and Plots).Dashboard Design using Google Data StudioMachine Learning Theory – Linear Regressions, Logistic Regressions, Decision Trees, RandomForests, KNN, SVMs, Model Assessment, Outlier Detection, ROC & AUC and RegularizationDeep Learning Theory and Tools – TensorFlow 2.0 and Keras (Neural Nets, CNNs, RNNs & LSTMs)Solving problems using Predictive Modeling, Classification, and Deep LearningData Analysis and Statistical Case Studies – Solve and analyze real-world problems and datasets. Data Science in Marketing – Modeling Engagement Rates and perform A/BTestingData Science in Retail – Customer Segmentation, Lifetime Value, and Customer/Product AnalyticsUnsupervised Learning – K-Means Clustering, PCA,t-SNE, Agglomerative Hierarchical, Mean Shift, DBSCAN and E-M GMM ClusteringRecommendation Systems – Collaborative Filtering and Content-based filtering +Learn to use LiteFM +Deep Learning Recommendation SystemsNatural Language Processing – Bag ofWords, Lemmatizing/Stemming, TF-IDFVectorizer, and Word2VecBig Data with PySpark – Challenges in Big Data, Hadoop, MapReduce, Spark, PySpark, RDD, Transformations, Actions, Lineage Graphs & Jobs, Data Cleaning and Manipulation, Machine Learning in PySpark (MLLib)Deployment to the Cloud using Heroku to build a Machine Learning APIOur fun and engaging Case Studies include: Sixteen (16)Statistical and Data Analysis Case Studies: Predicting the US2020 Election using multiple Polling DatasetsPredicting Diabetes Cases from Health DataMarket Basket Analysis using the Apriori AlgorithmPredicting the Football/Soccer World CupCovid Analysis and Creating Amazing Flourish Visualisations (Barchart Race)Analyzing Olympic DataIs Home Advantage Real in Soccer or Basketball?IPLCricket Data AnalysisStreaming Services (Netflix, Hulu, DisneyPlus and Amazon Prime) – Movie AnalysisPizza Restaurant Analysis -Most Popular Pizzas across the USMicro Brewery and Pub AnalysisSupply Chain AnalysisIndian Election AnalysisAfrica Economic Crisis AnalysisSix (6) Predictive Modeling & Classifiers Case Studies: Figuring Out Which Employees May Quit (Retention Analysis)Figuring Out Which Customers May Leave (Churn Analysis)Who do we target for Donations?Predicting Insurance PremiumsPredicting Airbnb PricesDetecting Credit Card FraudFour (4) Data Science in Marketing Case Studies: Analyzing Conversion Rates of Marketing CampaignsPredicting Engagement – What drives ad performance?A/B Testing (Optimizing Ads)Who are Your Best Customers? & Customer Lifetime Values (CLV)Four (4) Retail Data Science Case Studies: Product Analytics (Exploratory Data Analysis TechniquesClustering Customer Data from Travel AgencyProduct Recommendation Systems – Ecommerce Store ItemsMovie Recommendation System using LiteFMTwo (2) Time-Series Forecasting Case Studies: Sales Forecasting for a StoreStock Trading using Re-Enforcement LearningBrent Oil Price ForecastingThree (3) Natural Langauge Processing (NLP) Case Studies: Summarizing ReviewsDetecting Sentiment in textSpam DetectionOne (1)
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