This repository serves as the central hub for [Your Course Name]. This comprehensive course is designed to provide a well-rounded understanding of data science through two distinct learning paths: Business Case Study and Tech Stack.
Explore real-world applications of data science through three impactful use cases:
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Credit Scoring: Understand how data science can be employed to assess creditworthiness, enabling informed decision-making in financial contexts.
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Fraud Detection: Dive into the intricacies of fraud detection using data science techniques, safeguarding businesses against fraudulent activities.
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Customer Personalization: Explore the art of leveraging data to create personalized experiences for customers, enhancing satisfaction and engagement.
Develop a strong foundation in key technologies essential for data science practitioners:
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Python Basics: Acquire fundamental Python skills, laying the groundwork for data manipulation, analysis, and visualization.
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Python Analytics: Explore advanced Python functionalities for data analysis, enabling you to derive meaningful insights and draw informed conclusions.
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SQL Basics: Delve into the basics of Structured Query Language (SQL), essential for effective data management and retrieval.
Before diving into the course, ensure you have the following prerequisites:
- Basic understanding of programming concepts.
- Access to a Python environment (we recommend using Anaconda).
- A database system (SQLite, MySQL, or PostgreSQL) for SQL exercises.
├── Business_Case_Study/
│ ├── Credit_Scoring/
│ ├── Fraud_Detection/
│ └── Customer_Personalization/
├── Tech_Stack/
│ ├── Python_Basics/
│ ├── Python_Analytics/
│ └── SQL_Basics/
├── README.md
└── .gitignore
Business_Case_Study
: Contains materials related to the business case study learning path.Tech_Stack
: Houses resources and exercises for the tech stack learning path.
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Start by exploring the Business Case Study or Tech Stack folders based on your interest.
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Each learning path folder contains dedicated sections for the specified use cases or topics.
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Follow the provided instructions, review the code, and engage with the exercises to deepen your understanding.
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Connect with the community: Feel free to ask questions, share insights, and collaborate with fellow learners through the repository's Issues section.
Thank you for choosing [Your Course Name]. We hope you find this learning experience insightful and empowering. Happy coding!
For any queries or concerns, please contact [Your Contact Information].