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Adopting Data8 at a Two-year
College
Presented by: Ava Meredith, Seattle Central College
What is Data 8?
● Data 8 is a popular introductory Data Science class at UC Berkeley
● Designed to be accessible to a broad range of students without
the typical prerequisites for a data science class
● Data 8's unique model combines inferential thinking, computatianl
thinking, and focus on social issues into a single, introductory
course
● All materials for the course are available for free online under a CC
license.
Data 8 Goals
● Diversity
● Equity
● Pedagogical Clarity
● Scalability
● Depth
● No computational barrier to entry
Core Concepts
● Critical thinking
● Don't take your data for granted
● Use the combination of CS + Stats as a feature, not a bug
● Focus on hands on work
● Determine if your inference is sound
● Experiment
● Know the right statistical tools for the job
● Learn about data limitations
● Quantify and understand uncertainty in data
● Turn your data analysis into a decision
● Think of ways that you could be wrong
● Consider edge-cases
● Focus on main ideas (shield the students from non essential
topics)
● Use the data science module rather than many package APIs
● Use JupyterHub (no need for students to setup environment)
Observation and Visualization
● Abstract cleaning data by providing pre-collected/cleaned data
● Provide further resources
● Aim the course for anybody, not just statistics or CS majors.
Intersections of Topics
● Intersectionality is a feature, not a bug
● Connect CS and statistics concepts
● Use interactivity to let people explore
Topics covered
● Programming fundamentals
● Statistics, sampling, and hypothesis testing
● Inference, prediction, and models
● Comparing distributions
Connector courses
Connector courses offer the ways in which data science is applied in a
domain knowledge field
Tech Stack
● Managing course content - Jupyter notebooks
● Programming language - Python 3
● Primary data object and functions - Use of data analytics
packages in Python (Data 8 wraps several)
● Handling the Python environment - Python dev environment
managed with miniconda
Next Steps
View the course online http://data8.org/
Free online textbook: https://www.inferentialthinking.com/chapters/intro
Data Science Academic Resource Kit: https://data.berkeley.edu/education/ark

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Adopting data8 at a two year college

  • 1. Adopting Data8 at a Two-year College Presented by: Ava Meredith, Seattle Central College
  • 2. What is Data 8? ● Data 8 is a popular introductory Data Science class at UC Berkeley ● Designed to be accessible to a broad range of students without the typical prerequisites for a data science class ● Data 8's unique model combines inferential thinking, computatianl thinking, and focus on social issues into a single, introductory course ● All materials for the course are available for free online under a CC license.
  • 3. Data 8 Goals ● Diversity ● Equity ● Pedagogical Clarity ● Scalability ● Depth ● No computational barrier to entry
  • 4. Core Concepts ● Critical thinking ● Don't take your data for granted ● Use the combination of CS + Stats as a feature, not a bug ● Focus on hands on work ● Determine if your inference is sound ● Experiment ● Know the right statistical tools for the job
  • 5. ● Learn about data limitations ● Quantify and understand uncertainty in data ● Turn your data analysis into a decision ● Think of ways that you could be wrong ● Consider edge-cases
  • 6. ● Focus on main ideas (shield the students from non essential topics) ● Use the data science module rather than many package APIs ● Use JupyterHub (no need for students to setup environment)
  • 8. ● Abstract cleaning data by providing pre-collected/cleaned data ● Provide further resources ● Aim the course for anybody, not just statistics or CS majors.
  • 9. Intersections of Topics ● Intersectionality is a feature, not a bug ● Connect CS and statistics concepts ● Use interactivity to let people explore
  • 10. Topics covered ● Programming fundamentals ● Statistics, sampling, and hypothesis testing ● Inference, prediction, and models ● Comparing distributions
  • 11. Connector courses Connector courses offer the ways in which data science is applied in a domain knowledge field
  • 12. Tech Stack ● Managing course content - Jupyter notebooks ● Programming language - Python 3 ● Primary data object and functions - Use of data analytics packages in Python (Data 8 wraps several) ● Handling the Python environment - Python dev environment managed with miniconda
  • 13. Next Steps View the course online http://data8.org/ Free online textbook: https://www.inferentialthinking.com/chapters/intro Data Science Academic Resource Kit: https://data.berkeley.edu/education/ark