Data at Work: Three Real World Problems Solved by Data Science (2024)

At first glance, data science seems to be just another business buzzword – something abstract and ill-defined. While data can, in fact, be both of these things, it’s anything but a buzzword. Data science and its applications have been steadily changing the way that we do business and live our day-to-day lives— and considering that 90% of all of the world’s data has been created in the past few years, there’s a lot of growth ahead of this exciting field.

While traditional statistics and data analysis have always focused on using data to explain and predict; data science takes this further and uses data to learn – constructing algorithms and programs that collect from various sources and apply hybrids of mathematical and computer science methods to derive deeper insights. Whereas traditional analysis uses structured data sets, data science dares to ask further questions – looking at unstructured “big data” derived from millions of sources as well as non-traditional mediums such as text, video, and images.

So how is this all manifesting in the market? Here, we take a look at three real-world examples of how data science is driving business innovation across a wide range of industries.

AirBnB uses data science to help renters set their prices

Vacation broker Airbnb has always been a business informed by data. From understanding the demographics of renters to predicting availability and prices, Airbnb is a prime example of how the technology industry is leveraging data science. In fact, they even have an entire section of their blog dedicated to the ground-breaking work their data team is doing.

Faced with a large amount of data from their customers, hosts, locations, and demand for rentals, Airbnb went about using data science to create a dynamic pricing system called Aerosolve, which has since been released as an open-source resource.

Using machine learning techniques, Aerosolve predicts the optimal price for a rental based on its location, time of year, and a variety of other attributes. For Airbnb hosts, it revolutionized the way in which rental owners can best set their prices in the market and maximize returns. And that’s not all—Airbnb’s data scientists have also recently launched Airflow; an open source workflow management platform for building data pipelines to easily ingest data.

There’s no shortage of need for these solutions, and for the foreseeable future, we’ll be seeing explosive growth in data science solutions for technology companies like Airbnb

Data science revolutionizes sports analytics

After the release and success of “Moneyball” in 2003, sports teams have been realizing that their data is more powerful than they had ever imagined. Over the past few years, the Strategic Innovations Group at the consulting firm Booz Allen Hamilton has been doing just that—working to transform the way that teams utilize data.

Using data science and machine learning tactics, Booz Allen’s team was able to develop an application for MLB coaches to predict any pitcher’s throw with up to 75% accuracy—changing the way that teams prepare for a game. Looking at all pitchers who had thrown more than 1000 pitches, the team developed a model that takes into account current at-bat statistics, in-game situations and generic pitching measures to predict the next pitch.

Now, before a game starts, a coach has the ability to analyze an opposing team’s lineup and run predictive models to anticipate how to structure his plays, not only adding capability for his team but changing the manner in which the game itself is played.

Nonprofits solve the most pressing social issues with data

Founded in 2014, San Francisco-based Bayes Impact is a group of experienced data scientists assisting nonprofits in tackling some of the world’s heaviest data challenges. Since it’s founding, Bayes has helped the U.S. Department of Health make better matches between organ donors and those who need transplants, worked with the Michael J. Fox foundation to develop better data science methods for Parkinson’s research, and created methods to help detect fraud in microfinance. Bayes is also developing a model to help the City of San Francisco harness data science to optimize essential services like emergency response rates. Through organizations like Bayes, data science has the power to make a significant social impact in our data-driven world.

So, what does all of this mean for the job market? With the ever increasing need for data-driven solutions across every industry, the demand for data scientists has outpaced supply. According to a recent study by McKinsey, “by 2018, the United States will face a shortage of up to 190,000 data scientists with advanced training in statistics and machine learning as well as 1.5 million managers and analysts with enough proficiency in statistics to use big data effectively.”

It’s no wonder, then, that Data Scientists are one of the few non-managerial positions included by Glassdoor in the top 25 highest paying jobs in America. Plus, in their annual list of the 25 Best Jobs in America, Glassdoor rated Data Scientists as number one due to the high median base salary, a number of openings, and career opportunity.

Two things are certain; there is a serious need for data scientists in today’s job market and no shortage of life-changing problems that data scientistscan solve.

This post was originally featuredon the General Assembly blog.

Data at Work: Three Real World Problems Solved by Data Science (2024)

FAQs

What real world problems can data science solve? ›

Data science has become integral to modern businesses and organizations, driving decision-making, optimizing operations, and improving customer experiences. From predicting machine failures in manufacturing to personalizing healthcare treatments, data science is profoundly transforming industries.

What are 3 examples of data science that we see or use in our everyday lives? ›

Data Science Applications and Examples
  • Healthcare: Data science identifies and predicts disease, and personalizes healthcare recommendations.
  • Transportation: Data science optimizes shipping routes in real-time.
  • Sports: Data science accurately evaluates athletes' performance.

How is data science used to solve real world business problems? ›

The data science process gives a clear step-by-step framework to solve problems using data. It maps out how to go from a business issue to answers and insights using data. Key steps include defining the problem, collecting data, cleaning data, exploring, building models, testing, and putting solutions to work.

What problem does data scientist solve? ›

Data science solves real business problems by utilising data to construct algorithms and create programs that help prove optimal solutions to individual problems. Data science solves real business problems using hybrid math and computer science models to get actionable insights.

What are the problems with real world data? ›

These include limitations in data quality and validity, a large variety of data sources, privacy and ethical considerations, and regulatory uncertainty surrounding the use of RWD. Analyzing RWD requires sophisticated analysis platforms to mitigate confounding factors and ensure causal inference.

What are some problems in the world that can be solved by science? ›

  • Clean Drinking Water. ...
  • Keeping Our Technological Edge. ...
  • Protecting National Parks. ...
  • Meeting Our Climate Change Promises. ...
  • Genetically Enhanced Humans. ...
  • Nuclear Safeguards. ...
  • The Right to Die. ...
  • Tackling Obesity.
Nov 3, 2016

What is an example of using data in real life? ›

People use data to make everyday decisions all the time. Here are some examples: Checking the weather: When you check the weather in the morning, you are using data to help you decide what to wear.

How is data science used in the real world? ›

Data science plays a crucial role in sales and marketing by providing insights into customer behavior, preferences, and trends. It helps in identifying potential leads, personalizing marketing campaigns, optimizing pricing strategies, and improving sales forecasting.

What are the 5 examples of data? ›

  • Data collection:
  • Examples of data collection:
  • Monthly bills of a person.
  • Number of students in a class.
  • Number of persons liking a particular food.
  • Number of warehouses in a factory complex.
  • Number of hours spend on daily activities.

How can data help solve problems? ›

Data analytics can be helpful in problem solving by establishing the significance of the relationship between problems (Y) and potential root causes (X). As a result, a large variety of tools is available.

How does data analysis contribute to solving real world problems? ›

By analyzing relevant data, businesses can identify patterns and trends that would otherwise be invisible. This, in turn, allows them to make informed decisions that are based on evidence rather than guesswork.

How is data science used in today's world? ›

Data science plays a big role in our daily lives and many industries. It helps with things like suggesting movies to watch or products to buy online. Data scientists are the ones who use data to solve problems and make decisions. They collect, clean, and analyze data to find patterns and insights.

What is data science with an example? ›

Data science is the study of data to extract meaningful insights for business. 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.

What problems can big data solve? ›

How Big Data Can Solve Enterprise Problems
  • Predictive Analysis.
  • Enhancing Market Research.
  • Streamlining Business Process.
  • Data Access Centralization.
Sep 5, 2023

What makes a good data science problem? ›

The problem should be clear, concise, and measurable. Many companies are too vague when defining data problems, which makes it difficult or even impossible for data scientists to translate them into machine code.

How can data science help the world? ›

Data science is a rapidly evolving field that can potentially drive positive change and transformation across various sectors. By leveraging the power of data, data science helps society to make informed decisions, develop innovative solutions, and address complex challenges.

What are the benefits of using data science to solve real world problems? ›

It enables us to discover new knowledge, solve problems, and improve our lives in various domains such as healthcare, finance, marketing, and more. By combining the power of mathematics, statistics, and computer science, data science allows us to extract meaningful information from vast amounts of data.

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