Official Python Docs
https://docs.python.org/3/
Tools:
http://docs.python-guide.org/en/latest/dev/virtualenvs/
http://www.pythonforbeginners.com/basics/python-pip-usage
Practice:
http://www.practicepython.org/
https://www.hackerrank.com
https://wiki.python.org/moin/PythonDecorators
Python GUI FAQ
https://docs.python.org/3/faq/gui.html
Python Resources Telegram Channel
https://t.me/PythoResourcesTP
WhatsApp Channel
https://whatsapp.com/channel/0029VahGttK5a24AXAJDjm2R
https://docs.python.org/3/
Tools:
http://docs.python-guide.org/en/latest/dev/virtualenvs/
http://www.pythonforbeginners.com/basics/python-pip-usage
Practice:
http://www.practicepython.org/
https://www.hackerrank.com
https://wiki.python.org/moin/PythonDecorators
Python GUI FAQ
https://docs.python.org/3/faq/gui.html
Python Resources Telegram Channel
https://t.me/PythoResourcesTP
WhatsApp Channel
https://whatsapp.com/channel/0029VahGttK5a24AXAJDjm2R
docs.python-guide.org
Pipenv & Virtual Environments โ The Hitchhiker's Guide to Python
๐1
There has never been a better time to become a data analyst.
Tackle the tools:
* Excel
* SQL
* PowerBI/Tableau
* Python/R
Sharpen these soft skills:
* Communication
* Storytelling
* Critical thinking
* Business acumen
And let your journey begin.
Learn Power BI in 2025: https://t.me/DataAnalysisResourcesTP/7
Tackle the tools:
* Excel
* SQL
* PowerBI/Tableau
* Python/R
Sharpen these soft skills:
* Communication
* Storytelling
* Critical thinking
* Business acumen
And let your journey begin.
Learn Power BI in 2025: https://t.me/DataAnalysisResourcesTP/7
Essential Python topics for data analysts ๐๐
Python Topics:
Python Resources - https://t.me/PythonResourcesTP
1. Data Structures
- Lists, Tuples, and Dictionaries
- NumPy Arrays for numerical data
2. Data Manipulation
- Pandas DataFrames for structured data
- Data Cleaning and Preprocessing techniques
- Data Transformation and Reshaping
3. Data Visualization
- Matplotlib for basic plotting
- Seaborn for statistical visualizations
- Plotly for interactive charts
4. Statistical Analysis
- Descriptive Statistics
- Hypothesis Testing
- Regression Analysis
5. Machine Learning
- Scikit-Learn for machine learning models
- Model Building, Training, and Evaluation
- Feature Engineering and Selection
6. Time Series Analysis
- Handling Time Series Data
- Time Series Forecasting
- Anomaly Detection
7. Python Fundamentals
- Control Flow (if statements, loops)
- Functions and Modular Code
- Exception Handling
- File
Remember, it's highly likely that you won't know all these concepts from the start. Data analysis is a journey where the more you learn, the more you grow. Embrace the learning process, and your skills will continually evolve and expand. Keep up the great work!
Share with credits: https://t.me/PythonResourcesTP
Hope it helps :)
WhatsApp Channel: https://whatsapp.com/channel/0029VahGttK5a24AXAJDjm2R
Python Topics:
Python Resources - https://t.me/PythonResourcesTP
1. Data Structures
- Lists, Tuples, and Dictionaries
- NumPy Arrays for numerical data
2. Data Manipulation
- Pandas DataFrames for structured data
- Data Cleaning and Preprocessing techniques
- Data Transformation and Reshaping
3. Data Visualization
- Matplotlib for basic plotting
- Seaborn for statistical visualizations
- Plotly for interactive charts
4. Statistical Analysis
- Descriptive Statistics
- Hypothesis Testing
- Regression Analysis
5. Machine Learning
- Scikit-Learn for machine learning models
- Model Building, Training, and Evaluation
- Feature Engineering and Selection
6. Time Series Analysis
- Handling Time Series Data
- Time Series Forecasting
- Anomaly Detection
7. Python Fundamentals
- Control Flow (if statements, loops)
- Functions and Modular Code
- Exception Handling
- File
Remember, it's highly likely that you won't know all these concepts from the start. Data analysis is a journey where the more you learn, the more you grow. Embrace the learning process, and your skills will continually evolve and expand. Keep up the great work!
Share with credits: https://t.me/PythonResourcesTP
Hope it helps :)
WhatsApp Channel: https://whatsapp.com/channel/0029VahGttK5a24AXAJDjm2R
๐1
Learn Data Science in 2025
๐ญ. ๐๐ฝ๐ฝ๐น๐ ๐ฃ๐ฎ๐ฟ๐ฒ๐๐ผ'๐ ๐๐ฎ๐ ๐๐ผ ๐๐ฒ๐ฎ๐ฟ๐ป ๐๐๐๐ ๐๐ป๐ผ๐๐ด๐ต ๐
Pareto's Law states that "that 80% of consequences come from 20% of the causes".
This law should serve as a guiding framework for the volume of content you need to know to be proficient in data science.
Often rookies make the mistake of overspending their time learning algorithms that are rarely applied in production. Learning about advanced algorithms such as XLNet, Bayesian SVD++, and BiLSTMs, are cool to learn.
But, in reality, you will rarely apply such algorithms in production (unless your job demands research and application of state-of-the-art algos).
For most ML applications in production - especially in the MVP phase, simple algos like logistic regression, K-Means, random forest, and XGBoost provide the biggest bang for the buck because of their simplicity in training, interpretation and productionization.
So, invest more time learning topics that provide immediate value now, not a year later.
๐ฎ. ๐๐ถ๐ป๐ฑ ๐ฎ ๐ ๐ฒ๐ป๐๐ผ๐ฟ โก๏ธ
Thereโs a Japanese proverb that says โBetter than a thousand days of diligent study is one day with a great teacher.โ This proverb directly applies to learning data science quickly.
Mentors can teach you about how to build a model in production and how to manage stakeholders - stuff that you donโt often read about in courses and books.
So, find a mentor who can teach you practical knowledge in data science.
๐ฏ. ๐๐ฒ๐น๐ถ๐ฏ๐ฒ๐ฟ๐ฎ๐๐ฒ ๐ฃ๐ฟ๐ฎ๐ฐ๐๐ถ๐ฐ๐ฒ โ๏ธ
If you are serious about growing your excelling in data science, you have to put in the time to nurture your knowledge. This means that you need to spend less time watching mindless videos on TikTok and spend more time reading books and watching video lectures.
Join https://t.me/DataScienceResourcesTP for more
ENJOY LEARNING ๐๐
WhatsApp Channel: https://whatsapp.com/channel/0029VahGttK5a24AXAJDjm2R
๐ญ. ๐๐ฝ๐ฝ๐น๐ ๐ฃ๐ฎ๐ฟ๐ฒ๐๐ผ'๐ ๐๐ฎ๐ ๐๐ผ ๐๐ฒ๐ฎ๐ฟ๐ป ๐๐๐๐ ๐๐ป๐ผ๐๐ด๐ต ๐
Pareto's Law states that "that 80% of consequences come from 20% of the causes".
This law should serve as a guiding framework for the volume of content you need to know to be proficient in data science.
Often rookies make the mistake of overspending their time learning algorithms that are rarely applied in production. Learning about advanced algorithms such as XLNet, Bayesian SVD++, and BiLSTMs, are cool to learn.
But, in reality, you will rarely apply such algorithms in production (unless your job demands research and application of state-of-the-art algos).
For most ML applications in production - especially in the MVP phase, simple algos like logistic regression, K-Means, random forest, and XGBoost provide the biggest bang for the buck because of their simplicity in training, interpretation and productionization.
So, invest more time learning topics that provide immediate value now, not a year later.
๐ฎ. ๐๐ถ๐ป๐ฑ ๐ฎ ๐ ๐ฒ๐ป๐๐ผ๐ฟ โก๏ธ
Thereโs a Japanese proverb that says โBetter than a thousand days of diligent study is one day with a great teacher.โ This proverb directly applies to learning data science quickly.
Mentors can teach you about how to build a model in production and how to manage stakeholders - stuff that you donโt often read about in courses and books.
So, find a mentor who can teach you practical knowledge in data science.
๐ฏ. ๐๐ฒ๐น๐ถ๐ฏ๐ฒ๐ฟ๐ฎ๐๐ฒ ๐ฃ๐ฟ๐ฎ๐ฐ๐๐ถ๐ฐ๐ฒ โ๏ธ
If you are serious about growing your excelling in data science, you have to put in the time to nurture your knowledge. This means that you need to spend less time watching mindless videos on TikTok and spend more time reading books and watching video lectures.
Join https://t.me/DataScienceResourcesTP for more
ENJOY LEARNING ๐๐
WhatsApp Channel: https://whatsapp.com/channel/0029VahGttK5a24AXAJDjm2R
๐1
5 Game-Changing Habits to Master Your Data Science Journey
Read Here: https://dev.to/justdetermined/5-game-changing-habits-to-master-your-data-science-journey-2nd4
Read Here: https://dev.to/justdetermined/5-game-changing-habits-to-master-your-data-science-journey-2nd4
DEV Community
5 Game-Changing Habits to Master Your Data Science Journey
The journey to becoming a data scientist isnโt for the faint of heart. Itโs a demanding but rewarding...
Forwarded from Free Courses: Google | Microsoft | Udemy | Coursera | IBM | NVIDIA | LinkedIn Learning | MIT | Udemy Coupons & PDF Books
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Kenya Trends - Jobs | Opportunities | Free Resources
Sharing free learning resources, jobs & opportunities.
100 Page Python Intro.pdf
777.5 KB
๐ Title: 100 Page Python Intro (2025)
Python For Large Language Models (2025).pdf
10.2 MB
๐ Title: Python For Large Language Models (2025)
Languages used by data engineers:
๐SQL
๐Python
๐Scala
๐Pyspark
๐Spark SQL
๐SQL
๐Python
๐Scala
๐Pyspark
๐Spark SQL
What is Python?
- Python is a programming language ๐
- It's known for being easy to learn and read ๐
- You can use it for web development, data analysis, artificial intelligence, and more ๐ป๐๐
- Python is like writing instructions for a computer in a clear and simple way ๐๐ก
- Python supports working with a lot of data, making it great for projects that involve big data and statistics ๐๐
- It has a huge community, which means lots of support and resources for learners ๐๐ค
- Python is versatile; it's used in scientific fields, finance, and even in making movies and video games ๐งช๐ฐ๐ฌ๐ฎ
- It can run on different platforms like Windows, macOS, Linux, and even Raspberry Pi ๐ฅ๏ธ๐๐ง๐
- Python has many libraries and frameworks that help speed up the development process for web applications, machine learning, and more ๐ ๏ธ๐
Python Resources: t.me/pythonresourcestp
- Python is a programming language ๐
- It's known for being easy to learn and read ๐
- You can use it for web development, data analysis, artificial intelligence, and more ๐ป๐๐
- Python is like writing instructions for a computer in a clear and simple way ๐๐ก
- Python supports working with a lot of data, making it great for projects that involve big data and statistics ๐๐
- It has a huge community, which means lots of support and resources for learners ๐๐ค
- Python is versatile; it's used in scientific fields, finance, and even in making movies and video games ๐งช๐ฐ๐ฌ๐ฎ
- It can run on different platforms like Windows, macOS, Linux, and even Raspberry Pi ๐ฅ๏ธ๐๐ง๐
- Python has many libraries and frameworks that help speed up the development process for web applications, machine learning, and more ๐ ๏ธ๐
Python Resources: t.me/pythonresourcestp
20 python libraries you arent using but should.pdf
4.1 MB
20 Python Libraries You Aren't Using (But Should)
O`Reilly
O`Reilly
๐ฅ1๐1
Master Python programming in 15 days with Free Resources ๐๐
Days 1-3: Introduction to Python
- Day 1: Start by installing Python on your computer.
- Day 2: Learn the basic syntax and data types in Python (variables, numbers, strings).
- Day 3: Explore Python's built-in functions and operators.
Days 4-6: Control Structures
- Day 4: Understand conditional statements (if, elif, else).
- Day 5: Learn about loops (for and while) and iterators.
- Day 6: Work on small projects to practice using conditionals and loops.
Days 7-9: Data Structures
- Day 7: Learn about lists and how to manipulate them.
- Day 8: Explore dictionaries and sets.
- Day 9: Understand tuples and lists comprehensions.
Days 10-12: Functions and Modules
- Day 10: Learn how to define functions in Python.
- Day 11: Understand scope and global vs. local variables.
- Day 12: Explore Python's module system and create your own modules.
Days 13-15: Intermediate Concepts
- Day 13: Work with file handling and I/O operations.
- Day 14: Learn about exceptions and error handling.
- Day 15: Explore more advanced topics like object-oriented programming and libraries such as NumPy, pandas, and Matplotlib.
FREE RESOURCES TO LEARN PYTHON ๐
AI,Data Science & ML Resources: https://topmate.io/learning_resources/1406977
Python Interview Questions & Answers: https://t.me/PythonResourcesTP/23
Harvard course for Python: http://cs50.harvard.edu/python/2022/
Freecodecamp Python course with certificate: https://www.freecodecamp.org/learn/data-analysis-with-python/#data-analysis-with-python-course
Join for more free courses
ENJOY LEARNING๐๐
Days 1-3: Introduction to Python
- Day 1: Start by installing Python on your computer.
- Day 2: Learn the basic syntax and data types in Python (variables, numbers, strings).
- Day 3: Explore Python's built-in functions and operators.
Days 4-6: Control Structures
- Day 4: Understand conditional statements (if, elif, else).
- Day 5: Learn about loops (for and while) and iterators.
- Day 6: Work on small projects to practice using conditionals and loops.
Days 7-9: Data Structures
- Day 7: Learn about lists and how to manipulate them.
- Day 8: Explore dictionaries and sets.
- Day 9: Understand tuples and lists comprehensions.
Days 10-12: Functions and Modules
- Day 10: Learn how to define functions in Python.
- Day 11: Understand scope and global vs. local variables.
- Day 12: Explore Python's module system and create your own modules.
Days 13-15: Intermediate Concepts
- Day 13: Work with file handling and I/O operations.
- Day 14: Learn about exceptions and error handling.
- Day 15: Explore more advanced topics like object-oriented programming and libraries such as NumPy, pandas, and Matplotlib.
FREE RESOURCES TO LEARN PYTHON ๐
AI,Data Science & ML Resources: https://topmate.io/learning_resources/1406977
Python Interview Questions & Answers: https://t.me/PythonResourcesTP/23
Harvard course for Python: http://cs50.harvard.edu/python/2022/
Freecodecamp Python course with certificate: https://www.freecodecamp.org/learn/data-analysis-with-python/#data-analysis-with-python-course
Join for more free courses
ENJOY LEARNING๐๐
๐1
Python Interview questions and answers with code # Python.pdf
88 KB
Python Interview questions and answers with code # Python
๐1
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.NET & C# Basics: From Zero to First Applications - Trends
Learn how to create your first application in C# by taking this C# programming course! Do not waste your opportunity to study C# basics from zero in just
๐1
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#07 Hands On Python Data Science - Data Science Bootcamp
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#08 Data Science Career Path
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#09 Unlocking the Power of ChatGPT in Data Science : A-Z Guide
https://techurl.in/lXziA
#10 Dive Into Learning From Data: MNIST with Logistic Regression
https://techurl.in/lAKPk
#11 HR Metrics & Analytics: Data-Driven HR Decision Making
https://techurl.in/YxuWg
#12 Microsoft Fabric Masterclass: A Unified Data &Analytics Tool
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#13 Clinical Data Management Course
https://techurl.in/mWSAa
#14 Mastering Data Cleansing: Techniques and Best Practices
https://techurl.in/laJpc
#15 Data Mesh - A Modern Decentralized Data Management Concept
https://techurl.in/sNmGl
#16 Looker Studio /Google Data Studio Complete Advanced Tutorial
https://techurl.in/KDTRu
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Python For Data Science In 2025 A-Z: EDA With Real Exercises - Trends
Hi, dear learning aspirants welcome to โPython For Data Science A-Z: EDA With Real Exercises In 2024 โ from beginner to advanced level. We love
Python AI Roadmap
Stage 1 โ Learn Python Basics (Syntax, Data Types)
Stage 2 โ Data Handling (Pandas, NumPy)
Stage 3 โ Machine Learning (Scikit-Learn, Basic Models)
Stage 4 โ Deep Learning (TensorFlow/PyTorch, Neural Networks)
Stage 5 โ Build & Train ML Models
Stage 6 โ Natural Language Processing (NLTK, spaCy)
Stage 7 โ Model Deployment (Flask/FastAPI)
Stage 8 โ AI Testing & Optimization
80 Python Interview Questions: https://t.me/pythonresourcestp/19
Learn Generative AI: https://t.me/AIResourcesTP/27
Stage 1 โ Learn Python Basics (Syntax, Data Types)
Stage 2 โ Data Handling (Pandas, NumPy)
Stage 3 โ Machine Learning (Scikit-Learn, Basic Models)
Stage 4 โ Deep Learning (TensorFlow/PyTorch, Neural Networks)
Stage 5 โ Build & Train ML Models
Stage 6 โ Natural Language Processing (NLTK, spaCy)
Stage 7 โ Model Deployment (Flask/FastAPI)
Stage 8 โ AI Testing & Optimization
80 Python Interview Questions: https://t.me/pythonresourcestp/19
Learn Generative AI: https://t.me/AIResourcesTP/27
Python from scratch by University of Waterloo
0. Introduction
1. First steps
2. Built-in functions
3. Storing and using information
4. Creating functions
5. Booleans
6. Branching
7. Building better programs
8. Iteration using while
9. Storing elements in a sequence
10. Iteration using for
11. Bundling information into objects
12. Structuring data
13. Recursion
Link: https://open.cs.uwaterloo.ca/python-from-scratch/
Python Resources: https://t.me/pythonresourcestp
0. Introduction
1. First steps
2. Built-in functions
3. Storing and using information
4. Creating functions
5. Booleans
6. Branching
7. Building better programs
8. Iteration using while
9. Storing elements in a sequence
10. Iteration using for
11. Bundling information into objects
12. Structuring data
13. Recursion
Link: https://open.cs.uwaterloo.ca/python-from-scratch/
Python Resources: https://t.me/pythonresourcestp