Head of AI Philips China
Philips
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Upgrade to Pro — $25/moHead of AI Philips China
You own the AI agenda for Philips in China: which use cases we build, on which stack, to what standard, and how fast they reach production. This is a builder's role with an executive seat — you will sit in business reviews with China leadership and in architecture reviews with engineers, and you will be judged on shipped solutions with measured value, not on a portfolio of pilots.
Your solid line runs to the Global Head of the Philips AI Center of Excellence, which gives you the global reference architecture, the AI Hub, the enterprise partnerships, and the Responsible AI framework. Your dual local line runs to a member of the China Management Team, which gives you the business mandate, the priorities, and the access. You will work in close daily partnership with Philips China IT — they own the local infrastructure, applications, and security landscape; you own the AI capability that runs on it. Neither of you builds alone.
You will build and lead a small, senior, multidisciplinary team in China — AI and ML engineers, data scientists, AI solution architects, and a product-minded lead for adoption — deliberately lean, deliberately close to the businesses.
What you'll build and drive
1. Solutions built with the businesses
Work directly with Health Systems, Personal Health, and the commercial, supply chain, service, quality, and R&D functions in China to find, size, and sequence the AI use cases that matter — then build them. Typical territory: field service and installed-base support, sales and marketing personalization for Chinese digital channels, clinical and customer documentation, demand forecasting and supply planning, localization of global products and content, and consumer engagement in the WeChat ecosystem.
Run a visible intake-to-production pipeline: triage, feasibility, build, evaluate, ship, measure. Kill what does not work early and say so.
Co-own outcomes with the business sponsor. Every solution has a named business owner, a baseline, and a value measure agreed before you build.
2. A deliberate dual-stack AI architecture
Global Philips stack: frontier models from OpenAI and Anthropic consumed through the Philips enterprise AI Hub, Microsoft Azure and AWS AI services, Microsoft 365 Copilot at enterprise scale, and the global agentic patterns, evaluation harnesses, and paved-road SDKs from the AI CoE. Your job is to make these usable in China wherever they legally and technically can be.
China-domestic stack: where the global stack cannot reach — for latency, data residency, cost, Chinese-language quality, or channel integration — build on leading domestic alternatives. Expect to work with Alibaba's Qwen family on Alibaba Cloud (Model Studio / Bailian), ByteDance's Doubao on Volcano Engine, DeepSeek, Tencent Hunyuan and Tencent Cloud, Zhipu GLM, Baidu ERNIE and Baidu AI Cloud, Moonshot Kimi, and Huawei Cloud with Pangu models and Ascend silicon where domestic hardware matters. Vendor choice is a decision you will own and defend on evidence.
Channel and workplace integration where Chinese users actually are: WeChat and WeCom official accounts and Mini Programs, DingTalk or Feishu (Lark) workflows, and the local CRM, service, and commerce systems those channels feed.
The layer that matters most: a model and tool abstraction — gateway, routing, prompt and evaluation management, tracing, and cost control — that lets a single use case run on a global or a domestic model without a rewrite. Portability is the architecture principle; single-vendor lock-in in either direction is the failure mode.
3. One team with China IT and the global CoE
Partner with Philips China IT on infrastructure, identity, security, network, and application integration so AI solutions land on the sanctioned local landscape rather than beside it. You are a demanding customer and a co-owner, not a shadow IT function.
Feed China patterns back into the global AI CoE — domestic model evaluations, cost benchmarks, localization learnings, regulatory practice — and pull global assets in rather than rebuilding them. Where a global asset genuinely cannot work in China, document why and build the local equivalent to the same standard.
Represent Philips China in global AI architecture, governance, and vendor decisions so China constraints are designed for upfront, not retrofitted.
4. Data, sovereignty, and compliance by design
Build the China data foundation AI needs — local lakehouse and feature capability, consented and classified data products, and clear separation between what stays in China and what may lawfully leave — in step with Philips' global data and analytics architecture.
Own the AI compliance posture for China in practice, not on paper: PIPL, the Data Security Law, the Cybersecurity Law and MLPS 2.0 grading, CAC filing and registration for generative AI services and applications, AI-generated content labeling under the 2025 labeling measures and GB 45438-2025, the 2026 measures on anthropomorphic interactive services where relevant, and cross-border personal information transfer via the correct pathway — security assessment, standard contract, or the certification route in force since January 2026.
Manage the boundary between general AI features and regulated medical functionality, working with Regulatory Affairs and Quality on anything approaching NMPA scope. Translate Philips' global Responsible AI principles into engineering practice locally: model documentation, bias and safety evaluation, human oversight, incident response, and audit-ready traceability.
5. Fluency, community, and talent
Raise AI fluency across Philips China — business leaders, commercial teams, engineers — through hands-on enablement rather than awareness slides. Make Copilot and the AI Hub genuinely used, and make it obvious what good looks like.
Build the China AI community of practice and grow the local talent pipeline through hiring, mentoring, and partnerships with Chinese universities, startups, and cloud and model vendors.
Define and report the KPI framework — use cases in production, adoption, model performance, AI spend efficiency, and realized business value — to both the China Management Team and the global AI CoE.
Your first 12–18 months
What you bring
Must-have
Differentiators
Why this role, here
Preferred Skills:
• Statistical Methods
• Entrepreneurship and FDE capability
• Data Harmonization & Processing
• Artificial Intelligence (AI)
• AI Algorithm Development
• DevOps
• Business Acumen
• Data Governance
• Continuous Improvement
• Data Warehousing (DW)
• Strategic Planning
• Regulatory Requirements
• People Management
• Stakeholder Management
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