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Open nowPosted 11 days ago

Digital Transformation Technical Leader

MyCareersFuture94,028 open roles

Pay
SGD 10,000 – SGD 15,000 a Monthly
Where
Central, Singapore
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Your applicationOpen nowDigital Transformation Technical LeaderMyCareersFuture · Central, Singapore
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  2. 3.4%3 days
  3. 7.8%7 days
  4. 14.3%14 days
  5. 33.7%30 days
This job: posted 11 days ago

The posting

Key Responsibilities

Data and AI Strategy

  • Define and execute the organization’s Data and AI strategy, roadmap, operating model, and investment priorities.
  • Identify high-value opportunities for Generative AI, Predictive AI, Agentic AI, data analytics, and automation.
  • Advise senior management on emerging AI technologies, industry trends, risks, and strategic opportunities.
  • Establish measurable outcomes and value-realization frameworks for Data and AI initiatives.

AI Solution Development and Delivery

  • Lead the design, development, testing, deployment, and scaling of enterprise AI solutions.
  • Provide technical direction for machine learning, Generative AI, retrieval-augmented generation, AI agents, and intelligent automation.
  • Guide teams in selecting appropriate data platforms, models, AI frameworks, infrastructure, and development tools.
  • Promote rapid prototyping and experimentation while ensuring that successful solutions can transition into secure production environments.
  • Establish appropriate engineering, testing, evaluation, monitoring, and model lifecycle management practices.

Responsible AI, Safety and Governance

  • Establish and maintain policies and controls for Responsible AI, AI safety, privacy, security, transparency, fairness, and accountability.
  • Embed AI trust and safety requirements throughout the solution development lifecycle.
  • Oversee AI risk assessments, model evaluations, human oversight mechanisms, and regulatory compliance.
  • Define governance standards for enterprise AI agents, models, data, tools, and third-party AI services.

Research, Innovation and Ecosystem Partnerships

  • Build strategic relationships with local universities, research institutions, government agencies, start-ups, and technology partners.
  • Evaluate research findings and determine their potential for practical application and commercialization.
  • Lead technical due diligence for AI technologies, platforms, research proposals, partnerships, and investment opportunities.
  • Support the development of AI research, innovation, grant, and capability-building programmes.
  • Represent the organization in relevant industry, government, and research forums.

Data Leadership

  • Provide strategic oversight of enterprise data architecture, governance, quality, security, integration, and analytics.
  • Ensure that data assets are reliable, accessible, well-governed, and suitable for AI development.
  • Promote responsible data sharing and collaboration while protecting sensitive and regulated information.
  • Work with technology and business teams to establish scalable data and AI platforms.

Team and Stakeholder Leadership

  • Build, lead, and develop a multidisciplinary team of data scientists, AI engineers, data engineers, architects, researchers, and programme professionals.
  • Establish technical standards, delivery practices, capability-development plans, and communities of practice.
  • Communicate complex Data and AI concepts clearly to technical teams, business stakeholders, senior management, and external partners.
  • Promote a culture of innovation, collaboration, responsible experimentation, and continuous learning.

Requirements

  • Degree in Computer Science, Artificial Intelligence, Machine Learning, Data Science 15+years of experience in pre-sales, management consulting, enterprisearchitecture, AI advisory, or customer-facing strategy roles.
  • Strong AI literacy with a sound understanding of Generative AI, machine learning, agentic systems, and modern AI development practices.
  • Several years of hands-on experience designing, building, and deploying AI solutions in real-world environments.
  • Demonstrated experience leading Data and AI programmes, technical teams, research initiatives, or enterprise transformation projects.
  • Practical knowledge of AI safety, security, ethics, trust, governance, and Responsible AI.
  • Experience applying AI within sectors such as government, legal, healthcare, financial services, research, or other regulated industries.
  • Experience collaborating with local research ecosystems, universities, government agencies, and technology partners.
  • Strong analytical skills, including the ability to conduct technical due diligence, evaluate emerging technologies, and interpret research findings.
  • Excellent written, verbal, presentation, and stakeholder-management skills, with the ability to explain complex technical subjects to both technical and non-technical audiences.
  • Experience developing or managing research grants, innovation programmes, or similar technology initiatives would be advantageous.
  • Hands-on experience with AI infrastructure or hardware benchmarking, Agentic AI, multi-agent systems, robotics, or embodied AI would be highly desirable.
  • Generative AI, large language models, RAG, prompt engineering, fine-tuning, and model evaluation.
  • Databricks Product Certification preferred.
  • Agentic AI, tool calling, workflow orchestration, multi-agent systems, and human-in-the-loop controls.
  • Python and common AI/ML frameworks such as PyTorch, TensorFlow, scikit-learn, or equivalent technologies.
  • Cloud-based data and AI platforms, enterprise data architecture, MLOps, LLMOps, and model monitoring.
  • Data governance, cybersecurity, privacy, AI regulations, and Responsible AI frameworks.
  • AI compute infrastructure, GPUs, performance benchmarking, and workload optimization.
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