AI governance refers to the imposition of frameworks, rules, standards, legal requirements, policies, and best practices that govern, manage, and monitor the use of artificial intelligence (AI). It involves directing, managing, and monitoring AI activities to meet legal and ethical requirements. On the ethical front, businesses are focused on ensuring a high level of transparency, safety, and security in their AI models to build and maintain customer trust. On the legal front, enterprises must conform to legal requirements and satisfy regulators—or risk substantial financial penalties and damaged brand reputation.
Hardly a day passes without news of a new technological or legal development in generative AI appearing in the media—and they all have implications for the way companies do business. This frenzy is justified, as McKinsey research estimates that generative AI could contribute between $2.6 trillion and $4.4 trillion in annual value going forward. However, to realize this potential, organizations must implement AI in a way that is transparent, secure, and trustworthy. In fact, Gartner suggests that organizations that successfully operationalize secure and trustworthy AI could see a 50% increase in their AI adoption and attainment of business goals.
The key drivers of AI governance in enterprises include innovation, efficiency, compliance, and trust—all crucial elements for successfully integrating AI into business operations.
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