Expert, AI Engineering (40001865)

Nơi làm việc
Hà Nội
Ngày đăng
14/09/20264 tuần trước
Nhóm vị trí
Data / AI
Bộ phận
AI Transformation Division
Loại vị trí
Expert

U&Bank không nhận hồ sơ, không thu phí.

Mô tả công việc

Job Purpose

  • Lead the design and delivery of advanced AI solutions, ensuring high performance, scalability, and cost efficiency in production environments.
  • Solve complex AI challenges (modeling, evaluation, multi-agent systems) and develop reusable frameworks and standards adopted across teams.
  • Ensure AI systems are developed and operated responsibly, addressing safety, ethical risks, and governance requirements.

Key Accountabilities (1)

AI Craft – Specialization

  • Evaluate novel algorithms and training techniques against production constraints; diagnose and unblock the hardest cross-cutting Modeling problems (severe distribution shift, low-resource settings, multi-task architecture); build reusable Modeling patterns adopted across teams.
  • Implement complex multi-agent orchestration, long-running stateful workflows, and quality optimisation at scale; evaluate new models and frameworks hands-on; build reusable agent patterns and prompt libraries adopted across teams.
  • Evaluates and adopts advanced optimisation techniques; designs multi-tenant serving and capacity strategies; builds performance-regression frameworks and cost dashboards adopted across teams.
  • Recognised expert in the sub-domain inside the org; selects between competing approaches based on production constraints; reviews and unblocks others' sub-domain work; tackles the harder problems (low-resource scenarios, distribution shift, real-time constraints); the person teams escalate to.

AI Craft – Evaluation

  • Build evaluation tooling and automated experiment pipelines adopted across teams
  • Design and run online A/B tests with statistical rigour & calibrate human and LLM-judge evaluation
  • Resolve the hardest evaluation problems (subjective tasks, rare-event detection, long-tail safety).

Key Accountabilities (2)

Engineering for Production

  • Design testing strategies for AI systems (data validation, model regression, prompt-output, agent-trajectory tests); evaluate and introduce new tooling; build internal libraries, SDKs, and code templates that raise the engineering floor across teams.
  • Architect data platforms that serve both ML training and LLM/RAG workloads; design for cost, latency, and freshness trade-offs; build reusable data-quality, lineage, and observability tooling adopted across teams.
  • Architect complex AI systems combining ML and agentic components; design for graceful degradation, cost-efficiency, evolvability, and multi-tenancy; build reference implementations and integration patterns adopted by other teams; lead migration and convergence of inherited or siloed systems where warranted; balance near-term delivery against long-term architectural coherence.

Key Accountabilities (3)

Research & Emerging Technologies & AI Safety, Ethics & Responsible AI

  • Conduct in-depth evaluation of emerging AI technologies within the assigned domain/project; build prototypes to validate feasibility and risks; provide recommendations for appropriate implementation approaches for specific use cases.
  • Contribute to the development and refinement of responsible AI standards within the domain; ensure solutions comply with established guidelines and regulations.
  • Analyse ethical and safety risks of AI systems at solution/project level; propose appropriate risk mitigation measures.
  • Participate in designing and executing testing activities (e.g., adversarial testing, risk assessments) to improve system robustness and reliability.
  • Support AI risk assessments in product reviews, acting as a technical advisor within the domain.

Key Relationships - Direct Manager

Senior Manager/ Director/ Head, AI Engineering

Key Relationships - Internal Stakeholders

Business Tribe, Enabling Tribe (IT or Data - Engineer/Governance), division heads (Business, Finance, Risk, Corporate Affairs, IT), CEO, CIO, CDAO, Chief AI Transformation Officer, Chairman

Key Relationships - External Stakeholders

External stakeholders include vendors and partners providing professional services

Yêu cầu

Success Profile - Qualification and Experiences

Qualifications

  • Bachelor’s or master’s degree in computer science, Artificial Intelligence, Data Science, Software Engineering, Information Technology, or a related quantitative field
  • Strong foundation in mathematics, statistics, and machine learning principles
  • Relevant certifications in AI/ML, Cloud (Azure, AWS, GCP), or Data Engineering are a plus
  • English proficiency in line with Techcombank’s policy

Work Experience

  • 8+ years of experience in AI/ML, data engineering, and software development, with proven delivery of end-to-end AI solutions in production environments
  • Strong expertise in AI specialization, including machine learning, deep learning, NLP, and LLM applications, RAG with hands-on experience in experimentation, model evaluation, and performance tuning
  • Demonstrated experience in designing and building scalable AI systems and architectures, including microservices-based solutions and distributed systems
  • Solid experience in data engineering for AI, including building ETL/ELT pipelines, data lakes/warehouses, and handling structured & unstructured data using tools like Spark, Kafka, Airflow, and SQL/NoSQL databases
  • Proficiency in programming languages such as Python, Go, Java, or Scala, and experience with AI/ML frameworks (e.g., TensorFlow, PyTorch, / JAX, transformers, fine-tuning (LoRA, DPO), distillation, evaluation.)
  • Experience in AI experimentation & evaluation, including A/B testing, model benchmarking, validation techniques, and monitoring model performance in production
  • Working knowledge of AI Safety, Ethics & Responsible AI, Red-teaming, model risk management, alignment with SBV, MAS, Basel III, ensuring fairness, transparency, explainability, and compliance with regulatory requirements
  • Experience in MLOps/LLMOps practices (Level 2), including model deployment, CI/CD pipelines, versioning, and monitoring (e.g., Kubernetes, GPU orchestration, vector DBs, CI/CD for ML, drift and bias monitoring.)
  • Proven ability in business needs analysis, translating business problems into AI-driven solutions and measurable outcomes
  • Experience managing stakeholders, collaborating with cross-functional teams (business, risk, IT), and influencing decision-making
  • Track record of delivering AI projects end-to-end using Agile methodologies, ensuring timelines, quality, and business impact
  • Exposure to emerging technologies and research trends in AI, with the ability to evaluate and adopt new approaches when relevant
  • Basic experience or potential in AI strategy development and leadership, including mentoring junior team members and contributing to capability building

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