Season 7
In this episode, Dr. Ami Bhatt, Chief Medical Officer at WHOOP and former Chair of the FDA Digital Health Advisory Committee, explores how healthcare can embrace AI without losing the clinical judgment, human connection, and context essential to patient care. She sees AI as a powerful source of compute that can surface knowledge, identify patterns, and help clinicians navigate growing volumes of health data, while clinical acumen remains central to decision-making.
Dr. Bhatt emphasizes that digital health and Agentic AI must start with the patient, incorporate individual preferences, and establish clear guardrails for when human intervention is required. She also highlights wearables as an important bridge between community-based monitoring and clinical care.
Dr. Bhatt highlights the need for post-deployment monitoring and real-world evidence as AI systems continuously evolve, and calls for closer collaboration among patients, clinicians, technology companies, and regulators. She urges healthcare leaders to prepare for constant technological change, develop stronger digital infrastructure, and focus innovation on unmet patient needs rather than technology for its own sake. Take a listen.
This episode was recorded in July 2026. Dr. Bhatt is now Chief Medical Officer at WHOOP.
About Our Guest

Dr. Ami Bhatt is Chief Medical Officer at WHOOP, a role that places her at the center of how continuous health data earns clinical trust and reaches patients. She served as the inaugural Chair of the FDA Digital Health Advisory Committee and previously as Chief Innovation Officer at the American College of Cardiology. Before that, as Director of Outpatient Cardiology, TeleCardiology, and Adult Congenital Heart Disease at Massachusetts General Hospital and a Harvard and Yale-trained cardiologist, Dr. Bhatt spent years inside the systems that deliver care, which is precisely why she understands where they break.
She evaluates innovation by its outcomes, asking not whether a tool is technically capable, but whether it works for the clinician using it and the patient depending on it. Her work spans AI governance, digital health strategy, health equity, and the policy frameworks that determine which innovations actually get implemented.
Recent Episodes
Ritu: Hello, listeners. Welcome to Season Seven of the Big Unlock Podcast. My name is Ritu Uberoy, and I’m managing partner at Damo Consulting and your host today. We are absolutely thrilled to welcome Dr. Ami Bhatt to our podcast. Dr. Bhatt is a cardiologist and the Chief Innovation Officer at the American College of Cardiology, and Chair of the FDA Digital Health Advisory Committee — two roles that place her at the center of how healthcare institutions adopt, govern, and scale technology. A Harvard and Yale-trained cardiologist, formerly at Mass General, Dr. Bhatt has spent her career inside the systems that deliver care, which is precisely why she understands where and why they break. Her work spans AI governance, digital health strategy, and health equity, and we could not be more thrilled to have her here. Welcome, Dr. Bhatt.
Dr. Bhatt: Thank you so much for having me. I really appreciate it.
Ritu: We like to ask our guests about their origin story — how they got into medicine, healthcare, and technology. Would you like to share something?
Dr. Bhatt: Like every first-generation kid in the US, I liked science, I liked people, I went into medicine — that’s what I always thought my story was. It wasn’t until I took the time to think a little deeper that I realized what I love about medicine. In no other profession do you get entered that deeply into somebody’s life within fifteen minutes of meeting them — not just their health, but their family, their hopes, what they want. That connection has been the driving force behind why I became a clinician and why I stayed one for so many years. I practice adult congenital heart disease — a young population. Kids who grew up and came to me at 16 or 18, and those teenagers became my patients into their 20s, 30s, 40s, and 50s. They were living with lifelong disease. Coming to the hospital wasn’t a one-time thing — it was a reminder of a medicalized childhood. I had patients who said the smell of the hospital made them anxious. So about seven years before COVID, I started doing telemedicine for my patients. At the time, not many people were doing it, and colleagues would ask, “Dr. Bhatt, how are you going to take care of these complicated patients without touching them?” I started exploring what digital technologies I needed — digital stethoscopes, handheld ultrasound, image sharing — and how to teach patients to feel empowered and understand what they needed to do. I had a patient once up in Maine whose local doctor said something was wrong with his heart because he had passed out at softball. He said, “No, I tripped — and my heart always sounds like that.” He played a recording of his heart murmur that I had recorded in 2014 with one of the first digital stethoscopes. I had told him: “If anyone ever tells you this is a problem, you play that recording.” That patient felt genuinely empowered. That model — staying at home, taking visits remotely, teaching local providers how to care for them, while knowing I was there when they needed me — carried with me through outpatient cardiology at Mass General, through COVID, and into how I think about innovation today. How do we empower patients in the community with wearables and other tools to understand their own baseline, and when a trigger or a change appears, know it’s time to escalate to clinical care? That’s how I ended up where I am today.
Ritu: Thank you, Dr. Bhatt. Starting telecardiology seven years before COVID — you were truly a pioneer. I was reading your work, and you’ve written that clinical acumen supersedes AI every time. That’s a powerful statement in this era when AI models are increasingly capable. You’ve also said that clinicians are not short on intelligence or judgment. So how do we build healthcare systems that benefit from AI while ensuring clinicians don’t lose the observational skills, intuition, and pattern recognition they’ve spent years developing?
Dr. Bhatt: Humans are short on compute power — that’s what we are. The amount of information available to us now far exceeds what the human brain can utilize. When you’re sitting in front of me, I have access to not just your health records but your personal and family history, your preferences, your social determinants, your wearable data, your labs, your imaging, the research on the multiple diseases you may have by age 60, and novel findings that haven’t yet made it into the guidelines. How can I process all of that in twenty minutes? I cannot. That is the role of AI: to surface knowledge, to surface information, and to use compute power to see relationships and trends that would take us a very long time to identify. Back in the day, there was less information and more time. One chapter about your disease. Just the patient in front of you. No EHR. An hour to ask the same question again and get a full story. Nowadays, who has an hour with a patient? We understand why colleagues go into concierge medicine — because that intimate connection is the magic of caring for patients. In its absence, we need compute power to get there faster, and then use that information and those insights to ask: does this fit this patient? Let me use my clinical acumen to decide what happens next. That’s the goal. I always tell my fellows: you have to use AI until your brain hurts. A recent paper I read yesterday showed that knowledge workers actually spend more time, not less, because of AI — asking questions, interacting, refining. Most of us have accepted that AI is here. We see the numbers. But now the challenge is understanding when to use it. When should you deep dive with it? When does using it take time away from a patient conversation? We haven’t fully studied that yet. At the American College of Cardiology, one of our goals is to have our own members using AI for question-and-answer tasks and understand: how do they know when they’re getting better results? How can they recognize when they’re being led astray? We are at the very beginning of understanding how humans and AI will interact in clinical medicine.
Ritu: Context comes up repeatedly in your recent work. You’ve argued that medicine is not just about recognizing patterns but about understanding the patient’s lived experience and the clinician’s accumulated experience. As healthcare moves toward increasingly autonomous AI systems, how do we ensure that context becomes a design requirement rather than an afterthought?
Dr. Bhatt: The first thing I think about is starting with the patient. The patient is not given the level of respect they deserve in this equation right now — though we’re moving toward it. Rather than me trying to figure out your social determinants, why not have you bring that information directly to me? How do we capture a patient’s feelings, tendencies, preferences, and ways of engaging with healthcare? What is best for this individual, and how should they be engaged? We ask how a doctor likes their notes written, but we don’t ask how a patient likes to be engaged. We do a little of it — do you prefer telehealth or not? — but there’s so much more depth to that question. We have to start by engaging patients and helping them understand how they want to interact with the system, express it, quantify it, and then communicate it so the system can respond. That’s number one. Number two is around agentic AI, and it’s actually one reason agentic AI can sometimes be better — because I can always tell my AI: say this at an eighth-grade level, I don’t like that tone, say it differently. I can’t say that to a colleague sitting across from me. My patients actually did this all the time. Young patients in their 20s and 30s would say, “I didn’t understand that, Dr. Bhatt. Can you draw it again? Your drawing isn’t very good — can we try something else?” Honest, direct feedback. I want that for every patient. Agentic AI can provide that, sometimes better than a rushed clinician. Any clinician given enough time will do all of that — we’re just not given the time. The second thing in agentic systems is where the clinician places the guardrails. I wrote about this in my most recent Substack: in cardiology, there are specific places where AI should not make a decision without a human. We have to define those hard stops for the companies or systems implementing this. But beyond that, as agentic AI is being built, we should be able to give our input case by case. I was just talking this morning about a company called UpDoc that is trying to take clinician input as agentic AI is built and let individual doctors set their own guardrails — telling the system what they’re comfortable with and not comfortable with. That’s a lot to manage, but I think those are the right things to study: how to help agentic AI make the right decision at the right time, with the right guardrails, so physicians feel in charge — just as we want patients to feel in charge of their own process.
Ritu: You’re also challenging the industry to think beyond whether AI can generate the answer, and asking what happens after that answer reaches the patient. As health systems deploy more AI-generated insights, do you think the next frontier is actually communication — helping patients understand, trust, and act on these recommendations?
Dr. Bhatt: It’s already communication. Look at the wearable industry. The reason people across all socioeconomic levels, educational backgrounds, and geographies are increasingly wearing some form of wearable is that they want to engage, learn, and find data about themselves. And the reason it works isn’t only that the person wants it — it’s that the systems these apps create are inherently engaging. They know how to make a patient feel empowered. That’s already happening. What I’m focused on is how we take that industry and bring it into the flow of clinical care — and back out on the other end. We lose people everywhere in clinical care. Technology companies have a responsibility to come with us on the whole journey: “I see a signal. We’re going to provide some care. Now they need hospital care. They’re back out — and you’re back in the system that caught you in the first place.” That’s what we’re trying to build.
Ritu: Speaking of agentic systems, tell us more about the ARPA-H Advocate initiative, because they’re using agents and agentic AI to do exactly what you’re describing — continuously monitoring and intervening. What are your thoughts on that program?
Dr. Bhatt: Haider Warraich is a friend — he’s a cardiologist here in Boston, a heart failure physician. With ARPA-H, you can apply with your own idea and say, “Can I have funding to make this happen?” And that’s what he did. What I like about this approach is that it’s a pure research approach. The goal is to prove that you can have an agentic system that works, that can risk-stratify, that knows where a human in the loop is necessary, and that can monitor what happens as it goes along. The key problem we have right now is: we implement something — digital health, AI — and then it’s out there, and we don’t know what will happen afterward, what will change. We don’t have an infrastructure for post-deployment monitoring. What I’m most excited about with Advocate is that we’re going to have concrete examples of what post-deployment monitoring looks like — how we sense trends and shifts, how we decide to iterate and adapt. That’s the piece we’ve been missing. How do we keep track of what’s happening after we deploy?
Ritu: Dr. Warraich was actually on our podcast a couple of weeks ago talking about ARPA-H and the Advocate program — a very interesting conversation. Tell us more about your work on the FDA Digital Health Advisory Committee. This comes up constantly in our conversations with CMIOs and CIOs — things are moving too fast for regulation to keep up. By the time you get FDA approval, the underlying model has already changed. How do you see this gap closing?
Dr. Bhatt: I have the utmost respect for my colleagues at the FDA who are there full time. As inaugural chair of the Digital Health Advisory Committee, one thing became very clear over those two years: there is a real need to convene patient groups, industry technologists, and clinicians together to understand how the FDA can create an infrastructure for care — not simply regulate or deregulate, which is where we tend to get stuck. We need to understand from all of those perspectives what guardrails are needed, what the technology companies need, and what fits the clinician’s workflow. That unsiloing is what’s happening at the FDA right now. You’ll find them at every table, in every room, maintaining their commitment to scientific rigor. FDA approval is the table stakes — it means your technology works. But we’re now thinking about what comes next: not just post-deployment monitoring, but a pre-control change plan. With a medical device like a valve, you can tell the FDA what’s in the pipeline. With AI, I don’t necessarily know what model changes are coming. So how do we use real-world evidence to understand where things are going and how they’re changing? The FDA did allow some trend measurements and monitoring capabilities in the cardiometabolic space to proceed without formal approval, which was announced earlier this year. That creates real-world evidence about how quickly you can adapt from community signals — sick or not sick, at baseline or changing — and route patients into the clinical arena accordingly. Agentic systems can handle the lowest risk; high risk clearly needs a human; we’ll be in the middle ground for a while. I’ve learned that real-world evidence is essential. Everyone is now at the table, including the FDA, which I love. But we’ve never had a time when change itself is the constant — not just the technology, but the uptake, the expectations of the clinical network, and the demands of patients. All of that is changing simultaneously. All we can do is keep working together, look for real-world evidence, and wherever we can find data, value it and study it.
Ritu: Tell us a little more about the Elevate Leadership Program at Mass General — with everything moving so fast, clinicians need to be up to speed, but you’re all already so busy. How do you find the time?
Dr. Bhatt: About four years ago, a grateful patient family foundation was willing to give $3 million to Mass General Hospital to fund a new style of leadership course. The course I co-wrote with my colleague Eytan Shapira from MIT was designed for leadership-level clinicians — cohorts of fifteen — who were about to lead large groups of people. The longstanding problem in healthcare is that the better you do as a clinician and researcher, the more likely you are to receive an administrative or managerial role. Those skillsets don’t automatically overlap. They can, but they need to be taught. There have been many leadership programs for senior people, but I wrote this one because I saw the technology change coming — I had already been in it for ten years. COVID was the culmination of many of us in digital health saying for a decade: high-quality care in the community where people live, tech is coming and it’s going to come faster. We weren’t ready. The course works on how you first evaluate yourself as a leader and understand the discomfort that comes with change — how to express and share that discomfort while still being seen as a leader, and how to look at what’s coming and identify the true unmet needs versus the shiny things that aren’t necessary right now. We’re also reversing a long-standing dynamic in academic medicine where clinicians kept industry at arm’s length. Now we’re saying: let’s talk about what technology you have, because if you don’t hear from me what I need and how it would fit, you’ll build something that doesn’t get used. Eighty-six percent of cardiovascular digital health and AI technologies that pass the FDA sit on the shelf — they never get deployed. Passing the FDA does not mean success. The goal of Elevate is to create a community of leaders who lead not only with empathy but with an understanding that discomfort is constant — it’s not going away, and it’s because of constant change. I am here with you, respecting that, understanding the challenges, and helping find the right next step to move forward. That was my last project before I left MGH, and I’m really proud of it.
Ritu: What you said is so valuable — change is inevitable, and you really need to face it. Preparing people to sit with discomfort, to accept that they won’t know everything, but that as long as they keep learning they can navigate it.
Dr. Bhatt: That’s exactly right. And change is no longer in the future — it’s right now. If you run a practice today, technology is coming at you out of a fire hose, constantly. If you are a healthcare leader in the next decade, there will never be a moment where things feel stable. They will always be bubbling. You just have to decide: when am I doing things, and how will I act despite constant change?
Ritu: Thank you, Dr. Bhatt. Would you like to share any closing thoughts with our listeners?
Dr. Bhatt: The most important conversations happening right now are those where technology, clinicians, and patients are put in the same room to think about what the systems of care should actually look like. I would love for every listener — whether you’re a venture capitalist, a clinician, or a patient — to ask: what is the infrastructure for care in my world? Do we have one? Do we have guardrails? If not, who do I need to talk to in order to put something in place? We’ll keep working on this from the national level at the ACC and through the technology companies I work with, but I think each individual taking a moment to ask “is there an infrastructure, or is healthcare just hard because we don’t have the right one?” is powerful. The infrastructure we have was built in the 1970s, and that is not today’s healthcare. Look for infrastructure — it sounds boring, but it’s everything. And if people want to reach out, I’m Dr. Ami Bhatt on LinkedIn and Substack — I’m happy to talk and hear more ideas.
Ritu: Thank you so much, Dr. Bhatt. Lovely talking to you, and I’m sure our listeners will take a great deal away from this conversation.
Dr. Bhatt: Thank you for having me.
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Disclaimer: This Q&A has been derived from the podcast transcript and has been edited for readability and clarity.
Ritu M. Uberoy is a healthcare AI strategist, technology executive, educator, and author dedicated to advancing the responsible adoption of Artificial Intelligence across healthcare delivery, digital health, and life sciences. With more than twenty-five years of leadership experience spanning the United States and India, she is recognized for helping healthcare organizations move beyond experimentation to achieve scalable clinical, operational, and business transformation through AI.
She leads AI innovation initiatives, including the AI Center of Excellence at BigRio, where she works with health systems, healthcare technology companies, and life sciences organizations to operationalize Generative and Agentic AI solutions responsibly. Her work focuses on aligning AI innovation with clinical workflows, governance frameworks, workforce readiness, and patient trust—ensuring technology augments human judgment in high-consequence healthcare environments.
Ritu is the co-author of Generative AI: Unlocking the Next Chapter in Healthcare, a practical guide for healthcare executives navigating enterprise AI adoption. She also hosts The Big Unlock podcast, engaging global healthcare leaders on AI transformation and digital innovation. An active educator and speaker, she conducts executive workshops and participates in global forums like HIMSS, ViVE, Women in Tech, AI-Powered Women, RAISE, and more, shaping the future of AI-driven healthcare. Ritu holds advanced degrees in Computer Science and completed specialized AI programs at Harvard and MIT.
Paddy was the co-author of Healthcare Digital Transformation – How Consumerism, Technology and Pandemic are Accelerating the Future (Taylor & Francis, Aug 2020), along with Edward W. Marx. Paddy was also the author of the best-selling book The Big Unlock – Harnessing Data and Growing Digital Health Businesses in a Value-based Care Era (Archway Publishing, 2017). He was the host of the highly subscribed The Big Unlock podcast on digital transformation in healthcare featuring C-level executives from the healthcare and technology sectors. He was widely published and had a by-lined column in CIO Magazine and other respected industry publications.
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