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Think twice before you hire a chief AI officer
Source: Clint Boulton


SAN FRANCISCO -- Artificial intelligence (AI) will become so instrumental to corporate revenue growth that businesses should hire a chief artificial intelligence officer to spearhead AI initiatives, says Andrew Ng, who drives global AI strategy at Chinese search giant Baidu. Not so fast, says Neil Jacobstein, chair of artificial intelligence and robotics at Singularity University, who isn't a fan of companies centralizing leadership for AI functions.

The two clashed on the topic here last week at the WSJ's CIO Network, where Ng and Jacobstein spoke on a panel. Although they disagreed on the organizational approaches to AI, Ng and Jacobstein both said that the technology is a potentially game-changing way to harness the vast amounts of information corporations collect.

To centralize or decentralize AI, that is the question

Progress in AI regularly rekindles the furor over its potential to automate and displace jobs. But it also raises the question of whether companies are prepared to tap into AI to gain competitive advantages. Ng said that many are not, and he predicted that in five years CEOs running S&P 500 index companies will be lamenting the fact that they didn't formulate an AI strategy sooner.

That is why Ng, who also penned a column on the topic for Harvard Business Review, believes a chief AI officer is essential. Such a leader can help corporations attract and hire the right talent to explore opportunities in machine learning, deep learning and natural language processing. "We're in that early phase of AI where it's so complicated and recruiting talent is so difficult that having a centralized AI function will be the best way for many enterprises to bring in the talent," said Ng.

But Jacobstein said that centralizing AI is unlikely to be as effective as allowing business teams to conduct their own AI experiments with the support of the CEO. Alternatively, Jacobstein said companies can crowdsource AI talent from organizations such as Experfy, where data scientists can compete for prize money to cultivate optimal solutions to business challenges. "Taking a distributed, powerful approach to this is the best practice," Jacobstein said.

A distributed approach to AI may make the most practical sense, as a scarcity of talent to work with and implement the technology makes it hard for corporations to stock a large pool of AI experts. And you can blame Baidu and its fellow internet companies for amassing a concentrated wealth in this area.

In search of revenue growth, Google, Facebook, Baidu and Amazon.com have loaded up on engineers, mostly university faculty and researchers capable of implementing AI for image recognition, conversational computing and other areas.
Internet companies bleed AI talent dry

Google in November hired the director of Stanford University’s artificial intelligence lab to lead a new AI unit. Facebook plucked Yann LeCun from New York University. Carnegie Mellon University’s Alex Smola moved to Amazon. Ng himself joined Baidu from Stanford. Draining universities of the teachers best qualified to raise the next generation of AI experts will widen an already dire talent gap.

The irony of Ng, speaking from a company that has lured more than 1,300 AI specialists, that a chief AI officer is best-positioned to customize AI for real business context wasn't lost on the CIO audience.

"For an average Fortune 500 company it is absolutely not a good idea to have a C-suite person [leading an AI unit," says Khalid Kark, Deloitte's U.S. CIO program research leader, who attended the event.

Kark said it would be better for business lines to find ways to leverage AI to solve pressing business challenges, rather than building a separate organization and hoping to stock it with staff. "The real value of AI is going to be solving business problems and the need has to grow organically from there to be able to drive any benefits," Kark says.

Assuming a company could even hire enough people to staff a dedicated AI unit, such an entity also runs the risk of becoming a siloed organization that fosters resentment from other units. One manufacturing company Kark worked with created a digital unit comprising 1,200 workers, only to roll it back after it failed. "Every time we have a hard problem we can't have C-suite executive trying to solve it for us, Kark said. "It creates a silo and an organization that can be viewed on a pedestal."




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