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      Home»Opinion»The Algorithmic Foreman: When Workplace Efficiency Becomes Surveillance
      Opinion

      The Algorithmic Foreman: When Workplace Efficiency Becomes Surveillance

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      Artificial intelligence has enormous potential to make American businesses more productive, competitive, and profitable. It can automate paperwork, identify inefficiencies, improve safety, detect fraud, and free employees from repetitive tasks. But the same technology that can liberate workers from drudgery can also become the most intrusive workplace surveillance system ever devised. The question is no longer simply whether an employer can watch an employee. It is whether employers should be able to construct an extraordinarily detailed digital portrait of a worker’s behavior simply because the technology makes it possible.

      Workplace monitoring itself is hardly new. Factories have had supervisors since factories existed. Retail stores use security cameras. Companies monitor corporate email and maintain logs of activity on their computer networks. Employers have legitimate reasons for knowing whether employees are doing the jobs for which they are being paid.

      AI changes the equation because surveillance can become continuous, automated, comprehensive, and predictive.

      Software can potentially record keystrokes, analyze communications, measure computer activity, track location, evaluate telephone conversations, examine patterns of collaboration, monitor time spent using particular applications, and identify deviations from an employee’s normal behavior. AI can then combine enormous quantities of seemingly insignificant information and transform them into judgments about productivity, reliability, attitude, or risk.

      That creates something fundamentally different from a supervisor observing whether someone is working.

      The traditional supervisor sees a worker and makes a judgment. The algorithmic supervisor can observe thousands of data points that the employee may never realize are being collected. Worse, the employee may never know how those observations were interpreted.

      There is an important conservative principle involved here: ownership matters. A company owns its computers, networks, vehicles, facilities, and other equipment, and employees should not reasonably expect complete privacy while using corporate property. Employers also have responsibilities to shareholders, customers, and other employees. Theft, fraud, harassment, security breaches, and chronic nonperformance impose real costs.

      Businesses therefore need considerable freedom to manage their workplaces.

      But property rights are not an unlimited license to intrude into every dimension of another person’s life.

      Conservatives who distrust government surveillance should recognize the underlying danger when surveillance technology migrates into private institutions. Government and corporations are obviously not identical. The state possesses coercive powers that private employers do not. Nevertheless, the cultural acceptance of ubiquitous monitoring should concern anyone who values individual liberty.

      A society can gradually become accustomed to being watched.

      That normalization may ultimately matter more than any individual monitoring program.

      The greatest danger may emerge when AI stops reporting what employees actually did and begins predicting what they might do. There is a profound distinction between discovering that an employee stole proprietary information and assigning that employee a secret algorithmic “risk score” suggesting that he might eventually become a security problem.

      Prediction introduces probability into decisions affecting actual human beings.

      Consider an employee whose communication patterns suddenly change because of a family problem. An algorithm might interpret reduced interaction as disengagement. Another worker may spend less time typing because she has become more efficient. Productivity software might interpret inactivity as laziness. A third employee might communicate bluntly and be classified by sentiment-analysis software as negative or disruptive.

      The computer’s conclusion can acquire an undeserved aura of objectivity.

      “This is what the data says” can become the corporate equivalent of “the computer made the decision.”

      That should never be enough.

      If AI contributes to disciplinary action, demotion, termination, or other significant employment decisions, meaningful human accountability should remain somewhere in the process. An employee should also have a reasonable opportunity to challenge demonstrably incorrect information. Otherwise businesses risk constructing a workplace bureaucracy every bit as impersonal as the government bureaucracies conservatives have criticized for generations.

      Transparency provides a better starting point than sweeping government prohibition.

      Employees should generally know what categories of workplace activity are being monitored, what information is collected, how long it is retained, and whether automated systems influence important employment decisions. That does not mean companies must reveal security procedures that would allow fraudsters to defeat them. It means ordinary employees should not have to behave as though invisible investigators might be recording everything they do.

      Companies should also practice data restraint.

      The fact that information can be collected does not mean it needs to be collected. Every additional database creates another opportunity for misuse, breach, inaccurate interpretation, or mission creep. Businesses concerned about cybersecurity routinely embrace the principle of minimizing unnecessary access. The same logic should apply to employee surveillance data.

      There is also a practical reason for restraint: trust has economic value.

      A workplace in which employees believe every pause, conversation, mouse movement, and moment of inactivity is being evaluated can encourage exactly the wrong behavior. Workers learn to satisfy metrics rather than accomplish objectives. They keep applications open to appear active. They generate unnecessary emails. They avoid experimentation because unusual behavior might negatively affect an algorithmic score.

      The result can be a remarkable technological paradox: sophisticated productivity monitoring that makes an organization less productive.

      AI should therefore be used primarily to improve work rather than intensify control over workers.

      Businesses should ask whether a monitoring system identifies meaningful outcomes or merely produces more measurements. They should distinguish security from curiosity and accountability from intrusion. Most importantly, executives should be willing to put their own names behind consequential decisions rather than hiding behind proprietary algorithms.

      Artificial intelligence does not require America to choose between technological progress and individual liberty. The better approach is to preserve both.

      Employers have a legitimate right to protect their property and expect employees to perform their jobs. Employees retain legitimate interests in dignity, fairness, and reasonable boundaries. Those principles can coexist.

      The danger begins when technological capability becomes its own justification.

      A free society should resist that logic whether the watcher sits in Washington or in a corporate office. AI can become an extraordinarily useful workplace tool. But when every employee acquires an invisible algorithmic supervisor that never sleeps, never forgets, and quietly judges behavior no human being witnessed, efficiency has begun crossing into something considerably more troubling.

      The workplace of the future should be smarter.

      It does not need to become a panopticon.

      Intel Software
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