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Vice President, AI Strategy & Transformation
Исключительная роль в топовой криптокомпании с огромным влиянием на стратегию. Высокие требования компенсируются масштабом задач и возможностью формировать будущее ИИ в Web3, однако работа в CEO Office предполагает экстремально высокий темп.
Сложность вакансии
Это позиция высочайшего уровня, требующая редкого сочетания глубоких технических навыков (архитектура LLM, RAG, агенты) и опыта стратегического управления на уровне C-suite. Кандидат должен быть признанным экспертом в ИИ с опытом внедрения систем в масштабах всей компании.
Анализ зарплаты
Для позиции уровня VP в Сингапуре в сфере ИИ и Финтеха предлагаемая компенсация (включая бонусы и токены) обычно находится в верхнем дециле рынка. Указанные оценки отражают базовую часть и стандартные бонусы для руководителей такого уровня в международных технологических хабах.
Сопроводительное письмо
I am writing to express my strong interest in the VP of AI Strategy & Transformation position at OKX. With over a decade of experience in deep learning and a proven track record of deploying production-grade AI systems, I am particularly drawn to OKX's vision of integrating agentic AI and LLM-powered workflows across the entire organization. My background combines the technical depth required to architect RAG systems and fine-tuning pipelines with the strategic mindset needed to advise executive leadership on frontier AI developments.
In my previous roles, I have successfully led company-wide AI literacy programs and built Centers of Excellence that bridged the gap between raw research and scalable business applications. I am a 'builder-leader' by nature, and I am eager to bring my expertise in transformer architectures and autonomous workflow engines to OKX. I am confident that my experience in high-throughput environments and my passion for the crypto industry will allow me to drive measurable transformation and maintain OKX's position at the forefront of technological innovation.
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Описание вакансии
Who We Are
At OKX, we believe that the future will be reshaped by crypto, and ultimately contribute to every individual's freedom.
OKX is a leading crypto exchange, and the developer of OKX Wallet, giving millions access to crypto trading and decentralized crypto applications (dApps). OKX is also a trusted brand by hundreds of large institutions seeking access to crypto markets. We are safe and reliable, backed by our Proof of Reserves.
Across our multiple offices globally, we are united by our core principles: We Before Me, Do the Right Thing, and Get Things Done. These shared values drive our culture, shape our processes, and foster a friendly, rewarding, and diverse environment for every OK-er.
About the Opportunity
We are seeking a VP of AI Strategy & Transformation — a hands-on technical leader who combines deep AI expertise with the strategic vision and executive influence to drive AI adoption across every business unit. This is not a research role or a traditional engineering management position. We need someone who has personally built and shipped production AI systems, understands the frontier of foundation models and agentic AI, and can translate that expertise into company-wide transformation.
The ideal candidate is, first and foremost, a deeply technical AI practitioner — someone who has architected and deployed AI systems at scale, and who can channel that credibility into driving AI adoption across every function of the organization. Not a theorist, not a people-manager-only — a builder-leader who ships and who makes others ship.
What You’ll Be Doing
1. Company AI Strategy & Transformation
Own the company’s AI roadmap end-to-end — from foundation model selection to business-unit-specific deployment plans:
- Define and continuously refine the enterprise AI strategy, aligning it to revenue goals, product differentiation, and operational efficiency targets.
- Conduct rigorous build-vs-buy-vs-partner analysis for foundation models, AI tooling, inference infrastructure, and data platforms.
- Establish an AI governance framework covering model risk, data privacy, bias mitigation, and regulatory compliance across jurisdictions.
- Serve as the primary AI advisor to the CEO and executive leadership team; translate frontier AI developments into actionable business implications.
- Build and maintain a rolling 6/12/24-month AI transformation roadmap with clear milestones, investment thresholds, and go/no-go decision points.
- Identify and evaluate strategic AI acquisition, investment, and partnership opportunities.
2. System Building & Technical Execution
Architect and deliver production-grade AI systems that create measurable business impact — not just prototypes:
- Lead the architecture of LLM-powered applications including RAG systems, agentic workflows, fine-tuning pipelines, and prompt engineering frameworks at enterprise scale.
- Design and implement AI-native infrastructure: model serving, automated evaluation, A/B testing frameworks, version control for prompts and models, and continuous monitoring for quality and drift.
- Build and optimize AI agent systems, multi-model orchestration, tool-use chains, and autonomous workflow engines that solve real business problems end-to-end.
- Build robust evaluation and benchmarking systems for AI outputs — measuring hallucination rates, task completion accuracy, latency, safety, and end-user satisfaction.
- Personally prototype and review critical AI system designs; maintain hands-on technical credibility with the engineering team.
3. Organizational AI Enablement & Adoption
Drive AI adoption across every business unit — making AI a core competency for the entire organization, not just the engineering team:
- Design and execute a company-wide AI literacy program segmented by role: executive leadership, product managers, engineers, operations, customer-facing teams, and support functions.
- Create internal AI tooling, templates, and playbooks that make it radically easy for every business unit to leverage AI capabilities (prompt libraries, no-code/low-code AI interfaces, internal copilots, AI-assisted workflows).
- Establish an AI Center of Excellence that serves as the hub for best practices, reusable components, and cross-functional AI project incubation.
- Implement a structured AI use-case intake and prioritization process: partner with each business unit to identify high-ROI AI opportunities, scope them properly, and execute with embedded AI support.
- Build an AI talent strategy: define hiring profiles for AI engineers and applied AI roles, design technical interview processes, and develop retention programs for top AI talent.
- Foster a culture of responsible AI experimentation: psychological safety to try and fail fast, coupled with rigorous post-mortems and knowledge sharing across BUs.
What We Look For In You
- 10+ years in AI / deep learning, with at least 5 years in a senior leadership role (Director+ or equivalent at a top-tier tech company, high-growth startup, or leading AI lab).
- Demonstrated track record of shipping production AI systems that directly impacted business outcomes at scale (revenue, engagement, efficiency).
- Deep expertise across the modern AI stack: large language models, transformer architectures, RAG, fine-tuning, RLHF/DPO, prompt engineering, and agentic AI frameworks.
- Strong publication record, open-source contributions, or recognized thought leadership in the AI community (conference talks, technical blog posts, courses, or widely-adopted tools).
- Exceptional communication skills: ability to present complex technical concepts to board-level audiences and translate business needs into technical specifications.
- Advanced degree (MS or PhD) in Computer Science, Artificial Intelligence, Statistics, or a related quantitative field.
Nice to Haves
- Experience in fintech, crypto/blockchain, or regulated industries with complex compliance requirements.
- Hands-on experience building AI-native products in consumer-facing, high-throughput environments (millions of daily active users).
- Track record of driving company-wide AI adoption initiatives — not just team-level, but organization-wide cultural and process transformation.
- Experience building or contributing to open-source AI tools, frameworks, or educational content adopted by the broader community.
- Familiarity with AI regulatory landscapes across multiple jurisdictions (US, EU AI Act, APAC frameworks).
- Published author or recognized educator in AI (books, widely-read technical blogs, MOOCs, or workshops).
Perks & Benefits
- Competitive total compensation package
- L&D programs and Education subsidy for employees' growth and development
- Various team building programs and company events
- Wellness and meal allowances
- Comprehensive healthcare schemes for employees and dependants
- More that we love to tell you along the process!
OKX Statement:
OKX is committed to equal employment opportunities regardless of race, color, genetic information, creed, religion, sex, sexual orientation, gender identity, lawful alien status, national origin, age, marital status, and non-job related physical or mental disability, or protected veteran status.
Notice:
All official OKX vacancies are published on this website. While roles may appear on selected third-party platforms from time to time, information on other sites may be inaccurate or outdated. If in doubt, please apply directly through our official careers website.
Information collected and processed as part of the recruitment process of any job application you choose to submit is subject to OKX's Candidate Privacy Notice.
Создайте идеальное резюме с помощью ИИ-агента

Навыки
- Large Language Models
- Transformer Architecture
- Retrieval-Augmented Generation
- Fine-tuning Pipeline
- Reinforcement Learning from Human Feedback (RLHF)
- Prompt Engineering
- AI Agents
- Python
- Deep Learning
- AI Governance
Возможные вопросы на собеседовании
Проверка практического опыта внедрения сложных систем и понимания инфраструктурных вызовов.
Опишите архитектуру наиболее сложной ИИ-системы, которую вы лично вывели в продакшн: с какими проблемами масштабирования вы столкнулись и как их решили?
Оценка способности кандидата принимать стратегические решения по стеку технологий.
Как вы проводите анализ 'build-vs-buy' при выборе базовых моделей и инфраструктуры инференса для крупной финтех-организации?
Важно понять, как кандидат будет вовлекать нетехнические отделы в использование ИИ.
Каков ваш план по внедрению ИИ-грамотности среди сотрудников, не связанных с разработкой, чтобы обеспечить реальное принятие технологий в бизнес-юнитах?
Проверка этической и регуляторной осведомленности в контексте глобальной компании.
Как вы планируете выстраивать систему управления рисками ИИ, учитывая различия в регуляциях (например, EU AI Act) и специфику криптоиндустрии?
Оценка лидерских качеств и способности нанимать лучших специалистов.
Как вы планируете конкурировать за топовые ИИ-таланты с Big Tech компаниями и какие критерии отбора в техническом интервью вы считаете критическими?
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