{"id":9161,"date":"2019-12-12T06:46:00","date_gmt":"2019-12-12T06:46:00","guid":{"rendered":"https:\/\/www.capgemini.com\/?post_type=research-and-insight&#038;p=512375"},"modified":"2025-04-01T14:47:42","modified_gmt":"2025-04-01T14:47:42","slug":"leveraging-the-power-of-ethical-and-transparent-ai-for-business-transformation","status":"publish","type":"research-and-insight","link":"https:\/\/www.capgemini.com\/ar-es\/insights\/biblioteca-de-investigacion\/leveraging-the-power-of-ethical-and-transparent-ai-for-business-transformation\/","title":{"rendered":"Leveraging the Power of Ethical and Transparent AI for Business Transformation"},"content":{"rendered":"\n<header class=\"wp-block-cg-blocks-hero-reusable is-style-default header heroReusable  \"><div class=\"header-bgs\"><picture><source srcset=\"https:\/\/www.capgemini.com\/wp-content\/uploads\/2021\/02\/DTR_Speaker-Banner_1920x480_Paul-Cobban-1-1.jpg?w=2880&amp;quality=70 1x, https:\/\/www.capgemini.com\/wp-content\/uploads\/2021\/02\/DTR_Speaker-Banner_1920x480_Paul-Cobban-1-1.jpg?w=2880&amp;quality=70 2x\" media=\"(min-width: 1500px)\"\/><source srcset=\"https:\/\/www.capgemini.com\/wp-content\/uploads\/2021\/02\/DTR_Speaker-Banner_1920x480_Paul-Cobban-1-1.jpg?w=1440&amp;quality=70 1x, https:\/\/www.capgemini.com\/wp-content\/uploads\/2021\/02\/DTR_Speaker-Banner_1920x480_Paul-Cobban-1-1.jpg?w=2880&amp;quality=70 2x\" media=\"(min-width: 992px)\"\/><source srcset=\"https:\/\/www.capgemini.com\/wp-content\/uploads\/2021\/02\/DTR_Speaker-Banner_1920x480_Paul-Cobban-1-1.jpg?w=1024&amp;quality=70 1x, https:\/\/www.capgemini.com\/wp-content\/uploads\/2021\/02\/DTR_Speaker-Banner_1920x480_Paul-Cobban-1-1.jpg?w=1024&amp;quality=70 2x\" media=\"(min-width: 768px)\"\/><source srcset=\"https:\/\/www.capgemini.com\/wp-content\/uploads\/2021\/02\/DTR_Speaker-Banner_1920x480_Paul-Cobban-1-1.jpg?w=768&amp;quality=70 1x, https:\/\/www.capgemini.com\/wp-content\/uploads\/2021\/02\/DTR_Speaker-Banner_1920x480_Paul-Cobban-1-1.jpg?w=768&amp;quality=70 2x\" media=\"(min-width: 0)\"\/><img decoding=\"async\" src=\"https:\/\/www.capgemini.com\/wp-content\/uploads\/2021\/02\/DTR_Speaker-Banner_1920x480_Paul-Cobban-1-1.jpg\" class=\"header-img header-img-d\" alt=\"\" style=\"object-fit:cover;object-position:50% 50%\" loading=\"eager\"\/><\/picture><\/div><div class=\"heroPictureCardHeaderShape\"><\/div><div class=\"container\"><div class=\"row\"><div class=\"col-md-12\"><div class=\"box\"><div class=\"boxTagWrapper\"><div class=\"tagInfo\"><\/div><\/div><div class=\"box-title\"><h1 data-maxlength=\"34\">Leveraging the Power of Ethical and Transparent AI for Business Transformation <\/h1><\/div><h2 class=\"reasearchInsightTitle\"> Paul Cobban, DBS <\/h2><div class=\"inner-row-insight download-btn\"><\/div><\/div><\/div><\/div><\/div><\/header>\n\n\n\n<section class=\"wp-block-cg-blocks-group undefined section section--article-content section--story-content article-body\"><div class=\"article-main-content\"><div class=\"container\"><div class=\"row\"><div class=\"col-12 col-md-11 col-lg-10 offset-md-1 offset-lg-1\"><div class=\"article-text article-quote-text\">\n<h5 class=\"wp-block-heading\" id=\"h-paul-cobban-is-the-chief-data-and-nbsp-transformation-officer-at-dbs-a-nbsp-multinational-bank-with-total-nbsp-assets-worth-s-551-billion-the-nbsp-bank-has-won-plaudits-as-the-nbsp-world-s-best-digital-bank-he-chairs-the-nbsp-future-enabled-skills-workgroup-of-the-institute-nbsp-of-banking-and-finance-and-he-is-also-a-member-nbsp-of-both-the-institute-of-international-finance-s-nbsp-fintech-advisory-council-and-the-technology-nbsp-roadmap-steering-committee-of-the-infocomm-nbsp-media-development-authority\">Paul Cobban is the chief data and&nbsp;transformation officer at DBS, a&nbsp;multinational bank with total&nbsp;assets worth S$551 billion. The&nbsp;bank has won plaudits as the&nbsp;\u201cWorld\u2019s Best Digital Bank.\u201d He chairs the&nbsp;Future Enabled Skills workgroup of the Institute&nbsp;of Banking and Finance and he is also a member&nbsp;of both the Institute of International Finance\u2019s&nbsp;Fintech Advisory Council and the Technology&nbsp;Roadmap Steering Committee of the Infocomm&nbsp;Media Development Authority.<\/h5>\n\n\n\n<h5 class=\"wp-block-heading\" id=\"h-the-capgemini-research-institute-spoke-nbsp-with-paul-to-understand-more-about-the-nbsp-role-of-ethical-and-transparent-ai-in-driving-nbsp-business-transformation\">The Capgemini Research Institute spoke&nbsp;with Paul to understand more about the&nbsp;role of ethical and transparent AI in driving&nbsp;business transformation.<\/h5>\n\n\n\n<hr class=\"wp-block-separator has-css-opacity\"\/>\n\n\n\n<h3 class=\"wp-block-heading\" id=\"h-ai-at-dbs\">AI AT DBS<\/h3>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-dbs-has-been-recognized-as-one-of-the-nbsp-world-s-best-digital-banks-did-ai-have-a-role-nbsp-to-play-in-this-transformation-and-to-what-nbsp-extent-do-you-believe-you-have-been-able-to-nbsp-leverage-ai-for-business-transformation\">DBS has been recognized as one of the&nbsp;world\u2019s best digital banks. Did AI have a role&nbsp;to play in this transformation, and to what&nbsp;extent do you believe you have been able to&nbsp;leverage AI for business transformation?<\/h4>\n\n\n\n<p>Our transformation has been 10 years in the making. In the&nbsp;early phases, AI was not part of the story, but it is definitely&nbsp;playing a critical role now. Going back five or six years,&nbsp;we partnered with A*STAR, which is the government\u2019s&nbsp;research and development arm in Singapore. Through&nbsp;the partnership, we learned how to make use of our data&nbsp;in non-traditional ways. They taught us how to predict&nbsp;when ATMs are going to fail or which one of our branches&nbsp;is going to have the next operational error. Then we&nbsp;broadened those use cases and started using data to&nbsp;predict when our relationship managers are likely to quit,&nbsp;so that we can put in interventions.<\/p>\n\n\n\n<p>Last year, we introduced an AI-chatbot to help our HR&nbsp;teams recruit and do a first round of interviews. We have&nbsp;seen a significant increase in productivity, mainly around&nbsp;augmenting people\u2019s jobs and making them easier.<\/p>\n\n\n\n<h3 class=\"wp-block-heading\" id=\"h-defining-ethical-and-nbsp-transparent-ai\">DEFINING ETHICAL AND&nbsp;TRANSPARENT AI<\/h3>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-how-have-you-arrived-at-a-definition-of-nbsp-ethics-and-transparency-in-ai-at-dbs\">How have you arrived at a definition of&nbsp;ethics and transparency in AI at DBS?<\/h4>\n\n\n\n<p>The Monetary Authority of Singapore (MAS) issued a&nbsp;document on this called FEAT, which stands for \u201cFairness,&nbsp;Ethics, Accountability, and Transparency.\u201d We used that&nbsp;as a foundation for our own internal variant, PURE, which&nbsp;stands for \u201cPurposeful, Unsurprising, Respectful, and&nbsp;Explainable.\u201d This was the foundation for the process&nbsp;we put in place to assess our data use cases. It is broader&nbsp;than just AI \u2013 it is about the use of data, and AI is a subset&nbsp;of that.<\/p>\n\n\n\n<p>Talking about the PURE descriptors, the first idea about&nbsp;being purposeful implies that we should not collect data&nbsp;just for the sake of collecting data. Instead, we should&nbsp;have a very concrete purpose for doing so \u2013 with the intent&nbsp;of making the lives of our customers better. The way in&nbsp;which we use the data should not shock our customers,&nbsp;and it should be unsurprising to them. Respectful refers&nbsp;to how we should not invade the privacy of people&nbsp;without good reason. At the same time, we are also very&nbsp;mindful of the fact that there are certain use cases, such&nbsp;as fraud and criminal activity, where you have to have a&nbsp;balanced approach.<\/p>\n\n\n\n<p>There are increasing expectations from customers that&nbsp;any decision that is made using an algorithm needs to be&nbsp;explainable, and the MAS guidelines are very clear that the&nbsp;explainability and accountability of a decision need to lie&nbsp;with a human being at some point.<\/p>\n\n\n\n<p>We recognize this as a very nascent area, and we will need&nbsp;to continue to iterate as we learn.<\/p>\n\n\n\n<h3 class=\"wp-block-heading\" id=\"h-the-business-owner-of-the-nbsp-algorithm-is-accountable\">THE BUSINESS OWNER OF THE&nbsp;ALGORITHM IS ACCOUNTABLE<\/h3>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-do-you-have-a-defined-governance-nbsp-mechanism-for-tackling-ethical-issues-in-ai\">Do you have a defined governance&nbsp;mechanism for tackling ethical issues in AI?<\/h4>\n\n\n\n<p>Yes, it is all based around the PURE concept. We have a&nbsp;process where everybody who is using data for a specific&nbsp;use case needs to do a self-assessment against the PURE&nbsp;principles. The vast majority of use cases are innocuous&nbsp;and do not need any formal assessment. Anything&nbsp;that triggers any of the PURE principles then goes to a&nbsp;PURE Committee, which I co-chair along with one of my&nbsp;colleagues from the business unit. Those use cases are&nbsp;then presented and discussed at the PURE Committee for&nbsp;ratification. They are then either approved or a mitigating&nbsp;control will be put in place to make sure that we do not&nbsp;trigger any of the PURE categories.<\/p>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-when-issues-do-arise-with-ai-nbsp-where-do-you-think-accountability-nbsp-and-responsibility-should-lie\">When issues do arise with AI,&nbsp;where do you think accountability&nbsp;and responsibility should lie?<\/h4>\n\n\n\n<p>We don\u2019t have any issues yet, but we have plenty of&nbsp;questions. For example, what is surprising to you may not&nbsp;be surprising to me. And, what is surprising to me today&nbsp;may not be surprising to me tomorrow as things evolve&nbsp;and people get used to things. Nothing here is black and&nbsp;white. There is a lot of judgment at play, especially in these&nbsp;early days of AI. However, accountability needs to be very&nbsp;clear. So, we are in the process of compiling an algorithmic&nbsp;model inventory, which means we \u201cinventorize\u201d every&nbsp;model in the company and ensure there is an owner&nbsp;associated with that model \u2013 and, that owner is&nbsp;accountable for the decisions that model makes. It is&nbsp;therefore important for that individual to be conversant&nbsp;enough with advanced analytics depending on the model&nbsp;and know how it operates.<\/p>\n\n\n\n<p>The other thing to note here involves the use cases of&nbsp;the model, as not all are sensitive. So, for example, we&nbsp;use algorithms to predict which one of our ATMs might&nbsp;have the next mechanical failure, but that is not very&nbsp;contentious. If the model gets it wrong, the worst that can&nbsp;happen is that the ATM can have an outage. However, if&nbsp;you are assessing people for credit, that is a different issue.&nbsp;You must have a judgment call around it and that is where&nbsp;some of the complexities are.<\/p>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-you-mentioned-ownership-of-these-nbsp-algorithmic-models-could-you-tell-nbsp-us-who-the-owner-usually-is\">You mentioned ownership of these&nbsp;algorithmic models \u2013 could you tell&nbsp;us who the owner usually is?<\/h4>\n\n\n\n<p>It depends on the model. Typically, it is the individual who&nbsp;is making decision before the algorithm. If I am responsible&nbsp;for the uptime of ATMs and I want to improve that, I&nbsp;will create an algorithm that helps me do it, and I will be&nbsp;accountable. The accountability and responsibility do not&nbsp;lie with the data scientist who develops the algorithm. The&nbsp;business owner in question needs to understand enough&nbsp;about the model to take on that accountability.<\/p>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-how-do-you-ensure-that-all-the-relevant-nbsp-teams-are-aware-of-and-are-responsible-nbsp-for-ethics-and-transparency-issues-in-ai\">How do you ensure that all the relevant&nbsp;teams are aware of, and are responsible&nbsp;for, ethics and transparency issues in AI?<\/h4>\n\n\n\n<p>We have a substantive training and awareness program&nbsp;called DataFirst. We also have various big data and data&nbsp;analytics training programs, and we have trained half the&nbsp;company on the basics of data in the past 18 months.&nbsp;Through these programs, we have equipped 1,000 of our&nbsp;employees to become data translators. Our senior leaders&nbsp;have also undergone specialized data courses.<\/p>\n\n\n\n<h3 class=\"wp-block-heading\" id=\"h-the-role-of-humans-in-ethical-ai\">THE ROLE OF HUMANS IN ETHICAL AI<\/h3>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-current-technology-is-not-fully-geared-to-deal-nbsp-with-all-issues-for-example-explainability-nbsp-bias-etc-so-how-far-can-ai-solve-its-own-nbsp-problems-today\">Current technology is not fully geared to deal&nbsp;with all issues \u2013 for example, explainability,&nbsp;bias, etc. So, how far can AI solve its own&nbsp;problems today?<\/h4>\n\n\n\n<p>In the short term, we are seeing a remarkable acceleration&nbsp;in tools that can adjust bias and non-explainability. It is&nbsp;not simply a case of waiting for technology to solve all&nbsp;the problems \u2013 it comes down to human judgment to&nbsp;make the call. Going back to my previous example of&nbsp;ATMs, we found that ATMs in the west of Singapore break&nbsp;down more frequently than in the east. This is not of any&nbsp;concern, but if my credit algorithm was biased towards one&nbsp;gender, then that is a cause for concern. We always need&nbsp;that judgment overlay.<\/p>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-do-you-believe-that-there-has-to-be-a-human-nbsp-in-the-loop-for-all-the-ai-systems-before-they-nbsp-make-consequential-decisions-about-people\">Do you believe that there has to be a human&nbsp;in the loop for all the AI systems before they&nbsp;make consequential decisions about people?<\/h4>\n\n\n\n<p>If you look at autonomous cars, by definition, there is no&nbsp;human in the loop. So it is only a matter of time before AI&nbsp;will increasingly act on its own. But that is when you really&nbsp;have to pay attention to what is going on. For example,&nbsp;as we have seen with algorithmic trading, it can cause a&nbsp;massive shift in the market.<\/p>\n\n\n\n<h3 class=\"wp-block-heading\" id=\"h-the-need-for-a-balanced-nbsp-approach-when-it-comes-nbsp-to-regulation\">THE NEED FOR A BALANCED&nbsp;APPROACH WHEN IT COMES&nbsp;TO REGULATION<\/h3>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-do-you-see-regulations-as-necessary-for-nbsp-implementing-ethical-ai-or-is-self-regulation-nbsp-the-way-to-go-in-the-latter-case-can-nbsp-companies-be-trusted-with-building-ethical-ai-nbsp-practices-in-the-absence-of-agreed-standards\">Do you see regulations as necessary for&nbsp;implementing ethical AI or is self-regulation&nbsp;the way to go? In the latter case, can&nbsp;companies be trusted with building ethical AI&nbsp;practices in the absence of agreed standards?<\/h4>\n\n\n\n<p>This is a challenging question. We have seen how&nbsp;unregulated big-tech companies, in the opinions of most&nbsp;people, have crossed the line. However, we have also seen&nbsp;where regulations with data have gone too far too quickly&nbsp;and have had negative unintended consequences. The&nbsp;approach MAS is taking is sensible \u2013 it involves discussing&nbsp;the issues across the industry, putting in place some&nbsp;guidelines initially, and getting feedback to see how that&nbsp;operates before we cement any regulation.<\/p>\n\n\n\n<p>You also have to think about the balance between the&nbsp;rights of the individual and the rights of business, and&nbsp;where you want to play. One analogy I often use is the&nbsp;measles vaccination. Should you make everyone take&nbsp;the vaccination for the greater protection of society? By&nbsp;doing so, you eliminate individual rights. These issues&nbsp;are difficult and regulating too much too soon can be an&nbsp;issue. But, on the other hand, leaving things completely&nbsp;unregulated is also very dangerous. The other challenge&nbsp;around regulation is that in an increasingly connected&nbsp;world, regulations in one part of the world differ from&nbsp;those in other parts. Regulators have a duty to collaborate&nbsp;among themselves and have some kind of baseline&nbsp;approach to this.<\/p>\n\n\n\n<h3 class=\"wp-block-heading\" id=\"h-ethical-ai-a-competitive-nbsp-advantage\">ETHICAL AI \u2013 A COMPETITIVE&nbsp;ADVANTAGE<\/h3>\n\n\n\n<h4 class=\"wp-block-heading\" id=\"h-what-would-be-your-top-suggestions-nbsp-for-organizations-across-sectors-nbsp-that-are-just-starting-out-on-the-nbsp-journey-of-developing-ethical-ai\">What would be your top suggestions&nbsp;for organizations across sectors&nbsp;that are just starting out on the&nbsp;journey of developing ethical AI?<\/h4>\n\n\n\n<p>The approach we have taken is working quite well and we&nbsp;recognize that it is a competitive advantage and worth&nbsp;doing. Second, create a cross-functional team to do two&nbsp;things \u2013 do some external research about what is relevant&nbsp;within the industry and beyond, and, look internally to find&nbsp;out what is being done with data and define how quickly&nbsp;you need to act. My final recommendation would be to&nbsp;focus on the use cases rather than just the&nbsp;data collection.<\/p>\n<\/div><\/div><\/div><\/div><\/div><\/section>\n","protected":false},"excerpt":{"rendered":"<p>Paul Cobban is the chief data and transformation officer at DBS, a multinational bank with total assets worth S$551 billion. The bank has won<\/p>\n","protected":false},"author":35,"featured_media":9162,"template":"","meta":{"cg_dt_proposed_to":[],"cg_seo_hreflang_relations":"[]","cg_seo_canonical_relation":"","cg_seo_hreflang_x_default_relation":"{\"uuid\":\"5f3db158-a63f-4ce4-bc5f-652fa9a3e20d\",\"blogId\":\"\",\"domain\":\"\",\"sitePath\":\"\",\"postLink\":\"\",\"postId\":null,\"isSaved\":true,\"isCrossLink\":false,\"hasCrossLink\":false}","cg_dt_approved_content":true,"cg_dt_mandatory_content":false,"cg_dt_notes":"","cg_dg_source_changed":false,"cg_dt_link_disabled":false,"footnotes":"","related_resource_url":"","related_resource_id":0,"related_resource_size":"","related_resource_type":"","cg_author":0,"_yoast_wpseo_primary_theme":67,"primary_term":"Data and AI","featured_focal_points":""},"tags":[],"research-and-insight-type":[234,230],"theme":[67],"brand":[],"service":[],"industry":[],"partners":[],"content-group":[],"class_list":["post-9161","research-and-insight","type-research-and-insight","status-publish","has-post-thumbnail","hentry","research-and-insight-type-capgemini-research-institute","research-and-insight-type-report","theme-data-and-ai"],"yoast_head":"<!-- This site is optimized with the Yoast SEO Premium plugin v22.8 (Yoast SEO v22.8) - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Leveraging the Power of Ethical and Transparent AI for Business Transformation - Capgemini Argentina<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/www.capgemini.com\/ar-es\/insights\/biblioteca-de-investigacion\/leveraging-the-power-of-ethical-and-transparent-ai-for-business-transformation\/\" \/>\n<meta property=\"og:locale\" content=\"es_MX\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Leveraging the Power of Ethical and Transparent AI for Business Transformation\" \/>\n<meta property=\"og:description\" content=\"Paul Cobban is the chief data and transformation officer at DBS, a multinational bank with total assets worth S$551 billion. 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