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UDEMY [100% OFF COUPON - Time left : FREE] Free Data Science Tutorial - Real Life Data Science, Machine Learning Projects

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Free Data Science Tutorial - Real Life Data Science, Machine Learning Projects
Author : TheMachineLearning.Org .
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Language : English​
What you'll learn :
  • Master Machine Learning on Python
  • Make powerful analysis
  • Learn best practices when it comes to Data Science Workflow
  • How to improve your Machine Learning Models
  • Create supervised machine learning algorithms to predict classes.
Requirements
  • Basic knowledge of data science
Description
Resurging interest in machine learning is due to the same factors that have made data mining and Bayesian analysis more popular than ever. Things like growing volumes and varieties of available data, computational processing that is cheaper and more powerful, and affordable data storage.
All of these things mean it's possible to quickly and automatically produce models that can analyze bigger, more complex data and deliver faster, more accurate results – even on a very large scale. And by building precise models, an organization has a better chance of identifying profitable opportunities – or avoiding unknown risks.
Most industries working with large amounts of data have recognized the value of machine learning technology. By gleaning insights from this data – often in real time – organizations are able to work more efficiently or gain an advantage over competitors.
Financial services
Banks and other businesses in the financial industry use machine learning technology for two key purposes: to identify important insights in data, and prevent fraud. The insights can identify investment opportunities, or help investors know when to trade. Data mining can also identify clients with high-risk profiles, or use cyber surveillance to pinpoint warning signs of fraud.
Government
Government agencies such as public safety and utilities have a particular need for machine learning since they have multiple sources of data that can be mined for insights. Analyzing sensor data, for example, identifies ways to increase efficiency and save money. Machine learning can also help detect fraud and minimize identity theft.
Health care
Machine learning is a fast-growing trend in the health care industry, thanks to the advent of wearable devices and sensors that can use data to assess a patient's health in real time. The technology can also help medical experts analyze data to identify trends or red flags that may lead to improved diagnoses and treatment.
Retail
Websites recommending items you might like based on previous purchases are using machine learning to analyze your buying history. Retailers rely on machine learning to capture data, analyze it and use it to personalize a shopping experience, implement a marketing campaign, price optimization, merchandise supply planning, and for customer insights.
Oil and gas
Finding new energy sources. Analyzing minerals in the ground. Predicting refinery sensor failure. Streamlining oil distribution to make it more efficient and cost-effective. The number of machine learning use cases for this industry is vast – and still expanding.
Transportation
Analyzing data to identify patterns and trends is key to the transportation industry, which relies on making routes more efficient and predicting potential problems to increase profitability. The data analysis and modeling aspects of machine learning are important tools to delivery companies, public transportation and other transportation organizations.
Who this course is for:
  • Beginners in data science
Course content
3 sections • 14 lectures • 1h 48m total lengthExpand all sections
Loan Prediction Analysis : 5 lectures • 39min
  • Importing Libraries And Data
  • Data preprocessing, visualization
  • Creating models
  • Hypertuning models
  • Download the project files
Predicting employee attrition : 5 lectures • 38min
  • Importing Data
  • Data preprocessing and visualization
  • Feature selection and model building
  • Hypertuning
  • Download the project files
Predicting Hotel Booking : 4 lectures • 31min
  • Importing libraries and data
  • Data preprocessing, EDA
  • Feature Engineering, Model Building
  • Download the project files