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 NEXT GENERATION OF
DATA SCIENTIST
INTRODUCTION
 Promising future for data scientist.
 Data science is a methodological approach
 The entire process is impossible to do without the help of trained
individuals, who specialize in Data Science, called “Data
Scientists.”
 The demand for such Data – Intensive jobs is increasing
exponentially.
1. TECHNICAL SKILLS
 The next generation of data scientist will maintain a breadth of
hard technical skills such as mathematics, statistics, probability
theory, machine learning, coding, data visualization etc.
 Data science process need to be fully cultivated such as:
Exploratory data analysis (EDA), creative feature engineering,
managing the vast number of models.
2. SLOW DOWN AND PROCEED METHODICALLY
 Understand the data properly
 Focus on Customer Requirements
 Avoid using data which is humongous but irrelevant
 Proceed with careful considerations for meaningful
results.
 Spend more time in getting the collected data in
proper shape
3. SOFT SKILLS
 What is soft skills for next generation of data scientists?
 Soft skills are non-technical skills that relate to how data
scientists work. They include how they interact with
colleagues, how they solve problems, and how they manage
their work.
 Some examples for soft skills include:
 •Leadership
 •Communication
 •Team work
 •Time management
4. APPLY THE SCIENTIFIC METHOD
 Data scientists should ascribe to the “scientific method” in
the way they test hypotheses and welcome challenges and
alternative theories.
 It’s important to ask a lot of questions.
 Don’t worry about appearing stupid.
 Don’t be afraid to ask for clarification.
 Do not confuse correlation and causation.
 Data scientists should remain skeptical.
5. PROCEED WITH ETHICS
 It’s important to realize that algorithms are not only
capable of predicting the future, but also of directing the
future. Next generation data scientists shouldn’t let their
salaries blind them to the point that their models are used
for unethical purposes. Instead, they should seek out
opportunities to solve problems of social value and
consider the impact and consequences of their models.
6. DATA SCIENCE TOOLS AND WORKFLOWS
 Becoming data scientist is hard. In any hard task, focus is critical. As a data scientist,
Python should probably be the first tool you should master.
 Python, SQL and R are the top performers. Other sources such as KDNuggets’ poll
results also support the prevalence of Python and R
TRANSFORMATION TOOLS
 1. Tensorflow: Focused on deep learning, launched by Google,
Tensorflow has 153k stars on github.
 2. PyTorch: Open source, built in Python, starred by ±45k in github. Most
data science teams that I personally know rely on PyTorch which
includes libraries for most machine learning approaches.
 3. DataRobot: DataRobot offers a machine learning platform for data
scientists of all skill levels to build and deploy accurate predictive
models in a fraction of the time it used to take.
 4. Alteryx
 5. Qubole
QUERYING AND PROCESSING
 Once data is accessible either in more structured
forms like relational databases or in a data lake.
 For querying data from multiple data sources, data
scientists also have query engines in their toolkit.
These engines allow data scientists to use SQL
queries on disparate data silos, so that they can
query the data where it already exists rather than
having to move around massive amounts of data to
run queries.
 Often queries can involve massive amounts of data,
which require processing engines to help speed up
and simplify the querying process.
IDES AND WORKSPACES
 Data scientists can now begin to conduct analyses. This piece of the
workflow happens in integrated development environments (IDEs)
and workspaces (often notebooks).
 IDEs: IDEs combine different automated application development
tools into one interface, can serve as a fast way to test and debug
code.
 Notebooks: Notebooks are tools that allow data scientists to combine
text that explains their thoughts and work, with code and graphs.
 Advanced Notebooks like Observable, Hex.tech, Deepnote, and
Noteable have emerged that allow for more powerful visualizations
and collaboration.
Thank You!!!

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Next generation of data scientist

  • 1.  NEXT GENERATION OF DATA SCIENTIST
  • 2. INTRODUCTION  Promising future for data scientist.  Data science is a methodological approach  The entire process is impossible to do without the help of trained individuals, who specialize in Data Science, called “Data Scientists.”  The demand for such Data – Intensive jobs is increasing exponentially.
  • 3. 1. TECHNICAL SKILLS  The next generation of data scientist will maintain a breadth of hard technical skills such as mathematics, statistics, probability theory, machine learning, coding, data visualization etc.  Data science process need to be fully cultivated such as: Exploratory data analysis (EDA), creative feature engineering, managing the vast number of models.
  • 4. 2. SLOW DOWN AND PROCEED METHODICALLY  Understand the data properly  Focus on Customer Requirements  Avoid using data which is humongous but irrelevant  Proceed with careful considerations for meaningful results.  Spend more time in getting the collected data in proper shape
  • 5. 3. SOFT SKILLS  What is soft skills for next generation of data scientists?  Soft skills are non-technical skills that relate to how data scientists work. They include how they interact with colleagues, how they solve problems, and how they manage their work.  Some examples for soft skills include:  •Leadership  •Communication  •Team work  •Time management
  • 6. 4. APPLY THE SCIENTIFIC METHOD  Data scientists should ascribe to the “scientific method” in the way they test hypotheses and welcome challenges and alternative theories.  It’s important to ask a lot of questions.  Don’t worry about appearing stupid.  Don’t be afraid to ask for clarification.  Do not confuse correlation and causation.  Data scientists should remain skeptical.
  • 7. 5. PROCEED WITH ETHICS  It’s important to realize that algorithms are not only capable of predicting the future, but also of directing the future. Next generation data scientists shouldn’t let their salaries blind them to the point that their models are used for unethical purposes. Instead, they should seek out opportunities to solve problems of social value and consider the impact and consequences of their models.
  • 8. 6. DATA SCIENCE TOOLS AND WORKFLOWS  Becoming data scientist is hard. In any hard task, focus is critical. As a data scientist, Python should probably be the first tool you should master.  Python, SQL and R are the top performers. Other sources such as KDNuggets’ poll results also support the prevalence of Python and R
  • 9. TRANSFORMATION TOOLS  1. Tensorflow: Focused on deep learning, launched by Google, Tensorflow has 153k stars on github.  2. PyTorch: Open source, built in Python, starred by ±45k in github. Most data science teams that I personally know rely on PyTorch which includes libraries for most machine learning approaches.  3. DataRobot: DataRobot offers a machine learning platform for data scientists of all skill levels to build and deploy accurate predictive models in a fraction of the time it used to take.  4. Alteryx  5. Qubole
  • 10. QUERYING AND PROCESSING  Once data is accessible either in more structured forms like relational databases or in a data lake.  For querying data from multiple data sources, data scientists also have query engines in their toolkit. These engines allow data scientists to use SQL queries on disparate data silos, so that they can query the data where it already exists rather than having to move around massive amounts of data to run queries.  Often queries can involve massive amounts of data, which require processing engines to help speed up and simplify the querying process.
  • 11. IDES AND WORKSPACES  Data scientists can now begin to conduct analyses. This piece of the workflow happens in integrated development environments (IDEs) and workspaces (often notebooks).  IDEs: IDEs combine different automated application development tools into one interface, can serve as a fast way to test and debug code.  Notebooks: Notebooks are tools that allow data scientists to combine text that explains their thoughts and work, with code and graphs.  Advanced Notebooks like Observable, Hex.tech, Deepnote, and Noteable have emerged that allow for more powerful visualizations and collaboration.