field of study to extract insights from data
Wikipedia
en.wikipedia.org โบ wiki โบ Data_science
Data science - Wikipedia
2 weeks ago - Data science is an interdisciplinary academic field that uses statistics, scientific computing, scientific methods, processing, scientific visualization, algorithms, and systems to extract or extrapolate knowledge from potentially noisy, structured, or unstructured data.
AWS
aws.amazon.com โบ what is cloud computing? โบ cloud computing concepts hub โบ analytics โบ what is data science?
What is Data Science? - Data Science Explained - AWS
2 weeks ago - It is a multidisciplinary approach that combines principles and practices from the fields of mathematics, statistics, artificial intelligence, and computer engineering to analyze large amounts of data. This analysis helps data scientists to ask and answer questions like what happened, why it happened, what will happen, and what can be done with the results. Data science is important because it combines tools, methods, and technology to generate meaning from data.
Someone explain me what data science is in your own words.
Just statistics turned engineering More on reddit.com
How do you define "data science" and "data scientist"?
A person interested in the culinary arts More on reddit.com
What do data scientists actually do on their day-to-day?
Drinking coffee, checking reddit and stackoverflow, being in meetings. Joking aside, there is a flaw with your question, and that is that you assume that all data scientists do the same tasks, or have even moderately similar day-to-days. Put differently: you just asked the equivalent of "what do lawyers actually do in their day to day?" I imagine that your day to day looks very different if you're a litigator vs. an IP attorney, vs. an international tax law attorney vs. a forensic attorney vs. a constitutional law attorney. The same is true for data science, but with maybe even looser boundaries. To oversimplify the world, I would say there are going to be 4 types of tasks that data scientists do on some regular cadence: Research: you will have to read up on different ways to solve problems, or different tools/technologies that you can use, or how to tackle specific modeling issues, or how to call a function, etc. It can be as quick as a 5 minute read on a new package in Python, or as long as several weeks to do a comprehensive literature review on modeling methods. Code: once you somewhat know what you have to do, you have do it. Normally you will start by identifying the data that you will need, scoping it, examining it, cleaning it, looking at it some more, do some basic analysis on it, clean it some more, do more advanced analysis, clean it again, put it in a nice format for modeling, more cleaning, and then code up some type of model. Then you clean the data some more, tune your model, debug it, clean, tune, debug, debug debug debug debug debug debug, look at results, they don't make sense, debug debug debug debug debug debug, hey that looks like something that makes sense, oh wait, no, debug debug debug, ok, that looks reasonable. Communicate results: you now have results and you need to convince someone in the organization that those results are good, and that those results are useful. Discuss how to make data science work usable by the organization: once you are able to convince key people that your work is useful, you will need to work with other people across the organization to execute your work in a way that actually drives better outputs. Your usual suspects will be your enterprise development team, a project manager/management team, and the lead business unit responsible for the process that you are working on improving. More on reddit.com
What does the title "data scientist" mean to you?
Once at a company I worked at we got a consulting statistician. They were completely useless, couldn't use SQL and needed expensive software to do any work. I've also worked with lots of developers who know lots of maths but can't work through the data to get insights.
While it's a bit wanky, more statistics than a developer and more IT than a statistician is the best definition I've come across.
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What is Data Science?
NNLM
nnlm.gov โบ guides โบ data-glossary โบ data-science
Data Science | NNLM
Data Science is an interdisciplinary field which uses statistics, computer science, programming, and domain knowledge to collect, process, and analyze data for the purpose of acquiring knowledge or solving a problem.
TechTarget
techtarget.com โบ searchenterpriseai โบ definition โบ data-science
What Is Data Science? The Ultimate Guide
Data science is the process of using advanced analytics to extract valuable information from data for business decision-making, strategic planning and other uses. Learn about how it works, its business benefits, the challenges that data scientists ...
GeeksforGeeks
geeksforgeeks.org โบ data science โบ data-science
What Is Data Science? Definition, Skills, Applications, Projects, and More - GeeksforGeeks
Data science is the study of data used to extract meaningful insights for business decisions.
Published ย 1 month ago
Datamites
datamites.com โบ blog โบ what-is-data-science-in-simple-words
What is Data Science in Simple Words? - DataMites Offical Blog
March 26, 2024 - Depth: Data science is generally more in-depth than data analysis. It involves more complex processes like building predictive models and machine learning algorithms. Tools and Techniques: Data scientists are expected to have a stronger background in coding and are often involved in creating more complex, automated processes. Data analysts use similar tools (like SQL, Python, or R) for simpler tasks like querying databases and performing basic statistical analyses.
W3Schools
w3schools.com โบ datascience โบ ds_introduction.asp
Data Science Introduction
Data Science is a combination of multiple disciplines that uses statistics, data analysis, and machine learning to analyze data and to extract knowledge and insights from it.
365 Data Science
365datascience.com โบ blog โบ career advice โบ career guides โบ defining data science: the what, where and how of data science
Defining the What, Where, How of Data Science โ 365 Data Science
April 11, 2024 - Data Science is a term that escapes any single complete definition, which makes it difficult to use, especially if the goal is to use it correctly. Most articles and publications use the term freely, with the assumption that it is universally understood. However, data science โ its methods, ...
Reddit
reddit.com โบ r/datascience โบ someone explain me what data science is in your own words.
r/datascience on Reddit: Someone explain me what data science is in your own words.
September 10, 2023 -
I know what data science is but how would you explain it , how do you feel about it?
Top answer 1 of 5
41
Just statistics turned engineering
2 of 5
14
Here's how I think of it: Data Science: using data from the past to try to answer questions about the future. IE based on past performance, what is likely to happen if we do x? Data Analysis: Based on past and current data, what has happened or what is happening? Data Engineering: WHERE'S MY DAMN DATA?!? YOU PROMISED ME A PIPELINE OF CLEAN DATA 6 MONTHS AGO! Why do I even pay you? The DS and DA could do it themselves much quicker. (Grumbling continues...)
Coursera
coursera.org โบ coursera articles โบ data โบ data science โบ what is data science? definition, examples, jobs, and more
What Is Data Science? Definition, Examples, Jobs, and More | Coursera
Data science is an in-demand career path for people with an aptitude for research, programming, math, and computers. Discover real-world applications and job opportunities in data science and what it takes to work in this exciting field.
Published ย October 15, 2025 Views ย 423
Microsoft Azure
azure.microsoft.com โบ en-us โบ resources โบ cloud-computing-dictionary โบ what-is-data-science
What is Data Science? Become a Data Scientist | Microsoft Azure
Data science is the scientific study of data to gain knowledge. This field combines multiple disciplines to extract knowledge from massive datasets for the purpose of making informed decisions and predictions.
Simplilearn
simplilearn.com โบ home โบ resources โบ data science & business analytics โบ the ultimate data science tutorial โบ what is data science: lifecycle, applications, prerequisites and tools
What is Data Science: Lifecycle, Applications, Prerequisites ...
March 9, 2026 - Data science is an essential part of many industries today, given the amounts of data that are produced, & is one of the most debated topics in IT circles. Know More!
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