ramikrispin, to datascience
@ramikrispin@mstdn.social avatar

(1/2) Shiny Apps for demystifying statistical models and methods 🚀

This is a cool website that explains different statistical concepts with the use of interactive Shiny Apps. Ben Prytherch made this website from the Department of Statistics at Colorado State University.

video/mp4

ramikrispin,
@ramikrispin@mstdn.social avatar

(2/2) It covers the following topics:
✅ Factorial ANOVA
✅ Mixed effect ANOVA
✅ Mixed effect with random slopes
✅ Logistic regression
✅ ANCOVA
✅ One-way ANOVA
✅ Odds ratio vs relative risk
✅ Correlation coefficient vs slope
✅ Sampling

Great use case of Shiny apps 👇🏼
https://sites.google.com/view/ben-prytherch-shiny-apps/shiny-apps

kristinHenry, to datascience
@kristinHenry@vis.social avatar

Some of the folks who signed up for my project finally got an email from me, thanking them for letting me know when their letters arrived.

Most of them arrived on, or near, the the day I had my surgery.

My recovery is still going well, and I finally had the mental and physical energy for the correspondence.

I'll be returning to working on the data visualization and art of the project soon!

kristinHenry,
@kristinHenry@vis.social avatar

I'm also now thanking folks who signed up months ago, but I was so low on energy before the tumor was removed.

Slow, but steady.

ramikrispin, to datascience
@ramikrispin@mstdn.social avatar

Building robust data pipelines with dbt, Airflow, and Great Expectations 🚀

I started to dive into great expectations - a Python library for data quality checks, and I found this great talk by Sam Bail about building data pipelines with dbt, Airflow, and great expectations.

📽️ https://www.youtube.com/watch?v=yJFHgNWmoMg

ramikrispin, to python
@ramikrispin@mstdn.social avatar

Cohort Revenue & Retention Analysis with Python 🚀

For those who work with cohort data, I recommend checking Dr.Juan Orduz tutorial for cohort revenue and retention analysis with PyMC 👇🏼

https://www.pymc-labs.com/blog-posts/cohort-revenue-retention/

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image/png

ramikrispin, to machinelearning
@ramikrispin@mstdn.social avatar

Machine Learning for Beginners 🚀

The Machine Learning for Beginners by Microsoft Developer is an introductory course for classical machine learning. This crash course mainly focuses on regression analysis with Python 🐍, and it covers topics such as:
✅ General setup
✅ Cleaning data
✅ Data visualization
✅ Regression models
✅ Polynomial regression
✅ Logistic regression

📽️ https://www.youtube.com/playlist?list=PLlrxD0HtieHjNnGcZ1TWzPjKYWgfXSiWG

rladiesrome, to datascience
@rladiesrome@fosstodon.org avatar

🎥 Recording Available! 🎥

Missed our recent "R in Production" event with Hadley Wickham? Don't worry! Watch now for practical tips & insights. 🚀

🔗https://rladiesrome.org/talks/2024/meetup/05242024/

@hadleywickham @rladiesnyc @posit_pbc

@fgazzelloni @silacos

datasciencejobs, to datascience
@datasciencejobs@mastodon.social avatar

🏢 Caterpillar Inc. is hiring a Data Scientist
Location: 🇬🇧 Peterborough, United Kingdom
💰 Salary: £46 000 - £56 000

https://datasciencejobs.com/jobs/data-scientist-caterpillar-inc-united-kingdom-9/

ramikrispin, to python
@ramikrispin@mstdn.social avatar

Happy Friday! ☀️

Scientific Python Lectures 🚀

Here is a short e-book with a sequence of tutorials on the scientific Python ecosystem for beginners. This includes topics such as:
✅ Working with numerical data using NumPy
✅ Data visualization with Matplotlib
✅ Scientific computing with SciPy
✅ Statistics with Python
✅ Machine learning with scikit-learn

https://lectures.scientific-python.org

Thanks to the tutorial contributors!

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ramikrispin, to python
@ramikrispin@mstdn.social avatar

(1/4) TIL about the plotnine library- the grammar of graphics in Python 🚀

I had never heard about the Plotnine library until I came across the Posit Plotnine contest (see the link below). The plotnine is a Python implementation of a grammar of graphics based on the ggplot2 library.

image/png
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transportationtalk,
@transportationtalk@fosstodon.org avatar

@ramikrispin There's also an alternative python implementation of ggplot2, called lets-plot by JetBrains: https://github.com/JetBrains/lets-plot

ramikrispin,
@ramikrispin@mstdn.social avatar

@transportationtalk nice! it is also intercative!

maugendre, to datascience
@maugendre@hachyderm.io avatar
stevensanderson, to datascience
@stevensanderson@mstdn.social avatar

Learn how to handle rows in R containing specific strings using base R's grep() and dplyr's filter() with str_detect(). Select or drop rows efficiently and enhance your data manipulation skills. Give it a try with your datasets for better data cleaning and organization.

#DataScience #RProgramming #Coding #R #RStats #Programming #Data #Strings

Post: https://www.spsanderson.com/steveondata/posts/2024-05-23/

ramikrispin, to python
@ramikrispin@mstdn.social avatar

This looks like a really cool course 👇🏼

College Precalculus – Full Course with Python Code by Ed Pratowski and freeCodeCamp focus on the foundation of calculus with Python implementation. This 12 hours course covers the following topics:
✅ Core trigonometry
✅ Matrix operation
✅ Working with complex numbers
✅ Probability

https://www.youtube.com/watch?v=Y8oZtFYweTY

datasciencejobs, to datascience
@datasciencejobs@mastodon.social avatar
ramikrispin, to llm
@ramikrispin@mstdn.social avatar

Fine Tuning LLM Models – Generative AI Course 👇🏼

FreeCodeCamp released today a new course for fine tuning LLM models. The course, by Krish Naik, focuses on different tuning methods such as QLORA, LORA, and Quantization using different models such as Llama2, Gradient, and Google Gemma model.

📽️: https://www.youtube.com/watch?v=iOdFUJiB0Zc

LabPlot, to datascience
@LabPlot@floss.social avatar

Below is just a small sample of plots that were created with #lLabPlot.

@labplot

#LabPlot is a FREE, open source and cross-platform Data Visualization and Data Analysis software.

Would you like to share with us your plots made in LabPlot?

#DataAnalysis #DataScience #Data #DataViz #DataVisualization #Science #Statistics #Mathematics #Math #STEM #FOSS #FLOSS #OpenSource #KDE

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