1 week ago

VP/AVP, Tech Lead, Enterprise GenAI Platform, Data Platform, Group Technology

DBS Bank Ltd

Singapore, East•Remote

📍 On-site

Category: OtherSubcategory: OtherType: Full-time


Job Purpose

The Data Platform team owns the bank's enterprise Generative AI capabilities and the cloud data infrastructure that supports business units across the bank. We are looking for a Tech Lead to take ownership of the architecture, security posture and cost efficiency of our GenAI platform on Google Cloud. The role combines hands-on AI engineering with cloud architecture, security and networking design, cloud financial management and technology risk governance, and provides senior technical leadership across the platform's data engineering estate.

Key Responsibilities

  • Lead the architecture, delivery and operation of enterprise GenAI services on Google Cloud, including
    knowledge search, retrieval-augmented generation and conversational assistants.
  • Design agent and orchestration patterns for LLM-based applications that comply with bank policy on
    autonomous systems and enforce appropriate access controls on retrieved data.
  • Establish secure execution patterns for tool-enabled AI workflows so that generated outputs and actions
    remain within enterprise isolation boundaries.
  • Assess third-party and open-source AI products for deployment in isolated, tightly controlled
    environments, and work with vendors on the architectural changes needed to meet bank standards.
  • Design private, zero-trust connectivity for AI and data services on GCP, covering private endpoint
    access, VPC and subnet design, DNS-based traffic steering and regional endpoint strategy.
  • Own identity, access and role-based control models for AI workloads, model endpoints and data
    access.
  • Produce technical risk assessments and layered security designs, and take solutions through
    Information Security, Technology Risk and Architecture governance.
  • Forecast LLM consumption and inference demand across model tiers to inform capacity commitments
    and pricing model selection.
  • Reduce inference cost and latency through caching strategies, model selection and workload
    right-sizing.
  • Lead annual cloud capacity and budget planning for the platform and drive elimination of cloud waste.
    Prepare cost-of-ownership analyses and business cases for on-premise to cloud migrations for senior
    management.
  • Provide technical leadership over large-scale batch and distributed data pipelines and their migration to
    managed cloud services, including resolution of production performance issues.
  • Establish platform observability, alerting and reliability targets.
  • Mentor engineers, review designs and set engineering standards for AI and data workloads.
  • Represent the platform in discussions with Information Security, cloud governance functions, vendors
    and business stakeholders.
  • Participate actively in Agile delivery and contribute to engineering excellence across the organisation.

Job Requirements

  • Master's degree in Artificial Intelligence, Machine Learning, Data Science or a closely related discipline;
    Bachelor's degree in Computer Science, Information Technology or a related discipline.
  • Minimum 10 years of technology experience, including at least 3 years within the banking or financial
    services industry.
  • Google Cloud Certified Professional Cloud Architect (active credential required).
  • Hands-on experience designing and operating production GenAI or LLM-based platforms on Google
    Cloud for enterprise users.
  • Strong GCP security and networking expertise, including private connectivity to managed services, VPC
    and subnet design, DNS routing and multi-region architectures, together with IAM and role-based
    access design.
  • Solid understanding of LLM cost and capacity management: consumption modelling, reserved versus
    on-demand capacity trade-offs, caching approaches and inference cost optimisation.
  • Experience delivering AI solutions in isolated or highly restricted environments and securing Information
    Security and Technology Risk approvals for them.
  • Experience with agent orchestration frameworks and tool-enabled LLM workflows in a regulated
    enterprise setting.
  • Strong data engineering background with distributed processing frameworks such as Apache Spark,
    including production troubleshooting and performance tuning, and proficiency in SQL.
  • Strong programming skills in Python; working knowledge of Java.
  • Experience with CI/CD tooling, containerisation and modern observability stacks.
  • Strong analytical, problem-solving and communication skills, with the ability to engage security, risk,
    vendor and business stakeholders.
  • Ability to work proactively and independently, and to operate with ambiguity in an evolving GenAI
    governance landscape.
  • Experience building conversational AI or virtual assistants in an enterprise setting is highly desirable.
  • Experience with on-premise to cloud migration of big data platforms and associated cost analysis is
    highly desirable.
  • Familiarity with machine learning frameworks and search or vector retrieval technologies is a plus

Location:

DBS Asia Hub

Job:

Technology

Schedule:

Regular

Employee Status:

Full time

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