AI Engineering Lead

Prudential Services Singapore Pte Ltd

Singapore

On-site

SGD 120,000 - 180,000

Full time

14 days+

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Job summary

Prudential Services Singapore Pte Ltd is seeking an AI Engineer to join the DPS Engineering team. You will design, build, and deploy AI-driven capabilities to enhance product features and decision making, partnering with product managers and engineers to translate business needs into scalable AI solutions.

You will lead model lifecycle management and collaborate with data engineers to define data requirements, pipelines, and governance.

Qualifications

  • Strong Python skills with hands-on ML model development.
  • Experience deploying AI/ML in production and monitoring.
  • Proven GenAI/LLM exposure and prompt engineering capabilities.
  • Familiarity with MLOps, CI/CD, and model deployment.
  • Knowledge of cloud platforms (Azure preferred).
  • SQL, data pipelines, and API familiarity.

Responsibilities

  • Design, develop, and deploy ML/AI models aligned with product goals.
  • Embed AI capabilities into product features within the squad.
  • Build end-to-end ML pipelines: data ingestion to monitoring.
  • Collaborate with data engineers for data requirements and quality.
  • Ensure governance, security, and responsible AI practices.

Skills

Python
ML frameworks
GenAI / LLMs
MLOps
Cloud platforms
SQL & data pipelines
Agile / squad delivery
Business impact mindset

Tools

TensorFlow
PyTorch
Scikit-learn

Job description

We are seeking an AI Engineer to join the DPS Engineering team, embedded within a cross-functional product delivery squad. This role will focus on designing, building, and deploying AI-driven capabilities that enhance product features, improve operational efficiency, and support data-driven decision-making.

The individual will work closely with product managers, engineers, and domain experts to translate business requirements into scalable AI solutions, ensuring seamless integration into production systems.

1. AI Solution Development
  • Design, develop, and deploy machine learning and AI models (e.g., NLP, predictive analytics, GenAI use cases) aligned with product objectives
  • Translate business problems into AI/ML solutions with clear success metrics
2. Product Integration
  • Embed AI capabilities into product features and workflows within the delivery squad
  • Collaborate with backend/frontend engineers to ensure scalable and reliable deployment
3. Model Lifecycle Management
  • Build and maintain end-to-end ML pipelines (data ingestion, training, evaluation, deployment, monitoring)
  • Ensure continuous improvement through model retraining and performance tuning
4. Data & Engineering Collaboration
  • Work with data engineers to define data requirements, pipelines, and data quality standards
  • Ensure proper feature engineering and dataset governance
5. Risk, Governance & Responsible AI
  • Ensure AI solutions comply with enterprise standards on security, privacy, and responsible AI usage
  • Document models, assumptions, and limitations clearly
Requirements:
  • Strong experience in Python and AI/ML frameworks (e.g., TensorFlow, PyTorch, Scikit-learn)
  • Experience with GenAI / LLMs (e.g., prompt engineering, RAG architectures, API-based models)
  • Familiarity with MLOps practices (CI/CD, model deployment, monitoring)
  • Experience working with cloud platforms (Azure preferred, AWS/GCP acceptable)
  • Knowledge of data engineering concepts (SQL, data pipelines, APIs)
  • Proven track record of delivering AI solutions in production environments
  • Experience working in agile, squad-based delivery models
  • Strong problem-solving mindset with a focus on business impact
  • Ability to work in fast-paced, iterative delivery environments
  • Effective collaboration across engineering, product, and business teams
  • Curiosity and drive to continuously learn emerging AI technologies
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