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March 20, 2019

Risks with People Analytics: Ensure a Balanced Approach

Organizational Effectiveness

With all good things come risks. With all opportunities, come responsibility. The same can be said for people analytics. Data is powerful. Knowledge of what that data means can help your company tremendously — but it can also hurt you. According to a survey by Deloitte, 64% of respondents are actively dealing with legal liability issues in relation to their people data.

Legal Risks

stored data being hacked and stolen

This makes you liable to your employees. There are various insurance plans to help with this, but prevention is key. Make sure you have good security measures in place, and keep no more data than necessary, for no longer than necessary.

 

Data algorithms can show bias

For example, through no fault of your own, your data could always recommend hiring male employees, or just white employees. It could look over women and people of color every time. That is one reason why it is important to not completely trust your data and to always have a human being analyzing it. If it were to continue unchecked, you could certainly have some legal hiring issues coming your way.

 

Risks with People Analytics

Your data can lie to you

Data uses programed algorithms looking for certain words, patterns, activities, etc. Based on data alone, many things can be overlooked, go unnoticed, or be misunderstood.

For example, if you use people analytics to determine potential candidates for promotions, you could find that certain people are always getting overlooked. Additionally, some valuable traits aren’t even being considered.

Perhaps you want people with managerial experience to promote into executive management, thus your data is looking at people currently in management roles. At the same time, the most qualified candidate is not currently in a role with a title of manager. They have all the other experience you are looking for: the right attitude, work ethic, and have held management positions elsewhere.

Basically, this is the exact person you’re looking for, but based on the data you asked for, they are not going to be recommended. So, your data will tell you the best person for the job. And it will be wrong.

 

You’ve got data analyzing attendance

You flag certain people for having a high number of report offs. They are planned and excused, but they still show up in the data. This is one of your best employees. When it comes time for a raise, though, their personal file shows a little strike against them for attendance.

This is a good example of why it’s important to have a real person that analyzes this data and reconciles it with things they know. Perhaps someone had a very sick family member or were sick themselves. They usually don’t have an attendance problem and the issue was only temporary.

Failing to recognize their contribution to the company, due to a few approved extra off days, could result in their looking elsewhere in the company. It could also result in low morale and less productivity.

Basically, anything that is good about data could also be bad if it is misunderstood and not properly analyzed. Strong data collection is important, but having a human being to go over them as well can make a world of difference.

 

How Aspirant Can Help

Aspirant's Organizational Effectiveness experts can implement methods for leveraging data to improve team management. Use the form below to schedule a casual discussion about how we can better position your company for success.

 

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Judy partners with executives and leadership teams to engage and inspire employees in a way that delivers sustainable strategic results. She brings deep expertise and creative ideas to solve organizational effectiveness issues and closely collaborates in a way that builds internal capabilities. Judy has spent over 25 years consulting in a variety of industries, bringing her expertise in behavior to a wide range of organizational issues including organizational behavior change, leadership, change management, culture and engagement.

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