Big Data and Privacy: What Companies Need to Know (2024)

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In recent years, cautionary tales of privacy issues and data breaches have made headlines across social media. Companies that handle large volumes of sensitive information are falling prey to data leaks, privacy issues, and consumer privacy laws (such as GDPR) are falling short. Your consumers have valid privacy concerns about their personal data in this digital age.

With big data comes an inevitable threat to data security — however, the data itself is not the problem. Weak data management is.

No privacy law can compensate for data that is poorly managed. Proper data management is essential for all organizations that handle sensitive information and large volumes of data. Those who prioritize data protection not only win customer loyalty by respecting individual privacy, but protect themselves in the long run with brand reputation and a team culture built around prioritizing informed decision-making and individual privacy.


Big data and privacy in your company

Big data is an asset in this digital age - and a privacy risk when managed poorly. Prioritizing cybersecurity in your company makes big data a big help, rather than a big roadblock.

Properly utilizing big data helps organizations like yours to better understand customers, build retention and marketing strategies, and promote intelligent decision-making at every level of the business.


Top 4 big data privacy risks

  1. Data breaches: Data breaches occur when sensitive information is accessed without authorization. In most cases, data breaches are the result of out-of-date software, weak passwords, and targeted malware attacks. Unfortunately, they can cost an organization a damaged reputation and a great deal of money. Keeping software up-to-date, changing passwords often, and educating employees on best security practices can all help prevent data breaches.
  2. Data brokerage: The sale of unprotected and incorrect data is considered data brokerage. Some companies gather and sell customer profiles, which contain false information that leads to flawed algorithms. Before buying data, organizations should do their research and make sure they are receiving data collection from a reputable provider that offers accurate data sets.
  3. Data discrimination: Since data can consist of customer demographic information, organizations may develop algorithms that are profiling and can penalize individuals based on age, gender, or ethnicity. Organizations should always have a thorough and accurate representation of customers, account for biases, and put fairness above analytics.
  4. Data collection and storage: Data storage of this sensitive information is often hosted on the cloud, rather than on a physical computer or network - to get that data on the cloud with minimal risk requires a carefully planned data management strategy and an in-depth understanding of the privacy risks.

How to make big data and privacy work for you


Employ real-time monitoring

Privacy issues can happen with no room for error — finding a solution that monitors big data in real-time helps to keep you on top of potential data breaches, and able to deploy data protection strategies faster and more efficiently.


Implement hom*omorphic encryption

hom*omorphic encryption is a form of encryption that allows users to compute big data without decrypting it first. This form of encryption should be implemented to store and process information in the cloud to prevent organizations from revealing sensitive information to outside vendors.


Avoid collecting too much data

A bigger amount of data isn't always better. Companies handling large amounts of data big data should only collect the data that is absolutely necessary for big data analytics. An organization may not need the Social Security numbers of their customers; customer logins. Organizations should consider deleting any personal information that is not needed to best protect the individual privacy of their customers.


Prevent internal threats

Organizations are often exposed to internal privacy risks from employees. Human error is an inevitable factor. Educate your employees across all levels on best practices to avoid internal threats (even the basics, like changing passwords frequently and logging off unused computers.)


Big data privacy tools: What to look for

  • Cloud-compatible: It’s essential for a big data privacy tool to be compatible with the cloud. If it only works on a physical server or computer, it’s likely an out-of-date solution that cannot keep up with today’s big data privacy challenges and privacy regulations.
  • User-friendly design: Adoption is key, and data privacy is a team effort. The right tool should be easy to use on all levels of your organization. Finding an intuitive, user-friendly tool encourages confidence and adoption across your team.
  • Automation: Manual protection is an admirable, but impossible feat.Opt for a tool that utilizes machine learning, and allows you to automate andoptimize your data quality and privacy protection — letting you focus on makingdecisions confidently with trustworthy data.


Getting started with big data privacy

Data breaches, data brokerage, and data discrimination can occur if big data privacy isn’t taken seriously. For this reason, data governance and integration are vital for proper compliance and privacy management. If your organization is searching for a big data privacy solution, Talend Data Fabric collects, governs, transforms, and shares data with internal stakeholders while ensuring data privacy. Try Talend Data Fabric today to reduce the risk of privacy issues often associated with big data and ensure your company has data it can trust.

Big Data and Privacy: What Companies Need to Know (2024)

FAQs

Big Data and Privacy: What Companies Need to Know? ›

Data privacy can be thought of as three main elements: consent, transparency and security. For example, organizations should have a person's permission when they collect, use and share their personal data, they should be clear about how they do that, and they should ensure that data is properly protected.

What is considered the biggest data privacy risk to a company? ›

Not Properly Controlling Access To Personal Data

If your business fails to implement proper controls, your customers' and employees' data is at risk of unauthorized access, like through a personal data breach, which leads to financial and reputational loss.

What are privacy concerns with big data? ›

Big Data Privacy Risks Across Data Lifecycle
StageRisks
Storage- Data breaches - Unauthorized access
Processing- Profiling - Discrimination
Sharing- Unauthorized dissemination - Data trafficking
Analysis- Surveillance - Manipulation
1 more row
Jan 12, 2024

What are the 5 V's of big data? ›

The 5 V's of big data -- velocity, volume, value, variety and veracity -- are the five main and innate characteristics of big data.

What do you think companies should try to do to protect users data privacy? ›

Encrypt sensitive information that you send to third parties over public networks (like the internet), and encrypt sensitive information that is stored on your computer network, laptops, or portable storage devices used by your employees. Consider also encrypting email transmissions within your business.

How do companies protect big data? ›

Encryption is a common way to protect customer data from bad actors, and organizations have different types of encryption they can choose from: File-level encryption can protect data in transit and make it harder for hackers to access cloud-based software or resources.

What companies have bad privacy policies? ›

Big Tech companies such as Amazon, Google, Apple, Meta (Facebook), and Microsoft, have faced scrutiny for using unethical practices. There are concerns about the Amazon Echo recording conversations, Apple handing over data to whoever asks, and Google selling user data.

What are the disadvantages of big data privacy? ›

Collecting and analyzing large volumes of data increases the risk of unauthorized access, data leaks, and cyber attacks, posing privacy and security risks for individuals and organizations.

What are the three 3 major Internet privacy issues? ›

Now that you understand the definition of Internet privacy and its importance, let's discuss the most common issues that surround your privacy online today:
  • Tracking. ...
  • Surveillance. ...
  • Theft. ...
  • Using the Same Credentials for Multiple Accounts. ...
  • Staying Logged in to Websites. ...
  • Using Services without Reading their Terms & Conditions.
6 days ago

What are the 5 P's of big data? ›

But measuring the business outcomes with data and analytics (D&A) is difficult, complex and time-consuming. In this article, we define the 5P of D&A measurement, i.e., purpose, plan, process, people and performance.

What is Hadoop in big data? ›

Hadoop is an open source framework based on Java that manages the storage and processing of large amounts of data for applications. Hadoop uses distributed storage and parallel processing to handle big data and analytics jobs, breaking workloads down into smaller workloads that can be run at the same time.

What are some examples of big data? ›

Big Data Examples to Know

Transportation: assist in GPS navigation, traffic and weather alerts. Government and public administration: track tax, defense and public health data. Business: streamline management operations and optimize costs. Healthcare: access medical records and accelerate treatment development.

How do we reconcile big data and privacy? ›

How to make big data and privacy work for you
  1. Implement hom*omorphic encryption. hom*omorphic encryption is a form of encryption that allows users to compute big data without decrypting it first. ...
  2. Avoid collecting too much data. A bigger amount of data isn't always better. ...
  3. Prevent internal threats.

What company has the best privacy policy? ›

On the other end of the spectrum, Apple proved to be the best company for data privacy, as it holds a minimal amount of data. Next to Apple, Amazon collects the least amount of data from consumers.

How do companies manage data privacy? ›

By protecting data, companies can prevent data breaches, damage to reputation, and can better meet regulatory requirements. Data protection solutions rely on technologies such as data loss prevention (DLP), storage with built-in data protection, firewalls, encryption, and endpoint protection.

What is the #1 security risk for any business? ›

Business cyber security risk #1: Ransomware.

What type of data cause the most privacy concerns? ›

Which Data Are Susceptible to Privacy Breaches?
  • Products you've purchased online.
  • Search engine and browser histories.
  • Location information.
  • Financial data.
  • Employee benefits service providers such as: Insurance companies. ...
  • Preferred operational solutions for tasks like: Employee messaging.
May 4, 2022

What is the most common type of data risk? ›

Data breaches: Data breaches are perhaps the most common type of data risk that businesses face today. A data breach occurs when an unauthorized individual gains access to sensitive information, such as personal data or financial information.

What is the general data privacy risk? ›

Privacy risk is the potential loss of control over personal information.

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