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Data Lakehouse Architecture (Banking, 1-year renewable contract)

Data Lakehouse Architecture (Banking, 1-year renewable contract)

evolution recruitment solutions pte. ltd.
10-13 Years
SGD 7,500 - 10,500 per month
  • Posted 2 days ago
  • Be among the first 10 applicants

Job Description

Dear Applicant,

If you or someone you know is interested, please send the CV directly to [Confidential Information] (most preferred, as I may overlook some CVs due to the high volume).

Please note that visa sponsorship is not available at this time.

Key Responsibilities

  • Own the end-to-end architecture and technical vision of an enterprise Lakehouse platform.
  • Design and implement scalable data products, data marketplace, knowledge layers, and platforms supporting agentic workloads.
  • Define target architectures for applications and platforms, with emphasis on reusability, scalability, performance, security, and operational efficiency.
  • Develop and maintain technical roadmaps and architecture strategies for the Lakehouse platform.
  • Establish technical frameworks and reusable patterns to accelerate the operationalisation of:

- Unstructured and multimodal content extraction.

- Lambda architecture and deployment patterns.

- Retrieval-Augmented Generation (RAG) and retrieval-augmented data patterns.

- Vector and graph-based data capabilities.

- Agentic workloads and AI-driven data solutions.

  • Design and implement large-scale distributed and MPP compute workloads across on-premise, hybrid, and cloud environments.
  • Architect and optimise Lakehouse platforms using open table formats, object storage, data federation, and multimodal query engines.
  • Design hybrid and cloud architectures using private connectivity, workload placement strategies, Infrastructure-as-Code, and cloud cost optimisation.
  • Design data contracts, SLAs, data quality rules, and governance standards for foundation and business data products in partnership with business stakeholders.
  • Enable data products to be consumed by downstream applications through APIs, publish-subscribe mechanisms, generative BI, real-time dashboards, and data marketplaces.
  • Support the architecture and implementation of RAG, embedding strategies, vector databases, graph databases, prompt engineering, and context management for agentic workloads.
  • Provide technical quality assurance and ensure delivery conforms to defined software development methodologies, engineering standards, and technology practices.
  • Review design specifications and technical deliverables produced by development teams.
  • Create and maintain functional and non-functional specifications, architecture/design documents, deployment guides, and training materials.
  • Independently install, customise, configure, and integrate software packages and technology solutions.
  • Participate in RFPs, proof-of-concepts (POCs), and technology/product selection activities.
  • Drive performance engineering, capacity planning, tuning, and optimisation of data platforms and workloads.
  • Partner with business stakeholders, technology teams, vendors, and other technology functions to design and deliver enterprise solutions.
  • Support continuous service improvement, process improvement, and operational excellence initiatives.
  • Ensure effective integration with DevOps, CI/CD, monitoring, testing, and engineering toolchains.
  • Provide technical guidance and mentorship while maintaining a high standard of quality across architecture and engineering deliveries.

Key Requirements

  • Bachelor's degree in Computer Science, Engineering, Information Technology, or equivalent experience.
  • 10-15 years of experience in Data Architecture, Big Data, Data Engineering, Data Lake, or Lakehouse implementations.
  • Strong experience designing and implementing enterprise-scale Data Lakehouse platforms, preferably within the financial services industry.
  • Hands-on experience with one or more major data/cloud platforms, such as Databricks, Snowflake, Cloudera, AWS, Azure, GCP, Huawei Cloud, or Alibaba Cloud.
  • Strong experience with large-scale Lakehouse architecture, implementation, performance optimisation, and distributed computing.
  • Deep knowledge of open table formats such as Apache Iceberg, Apache Hudi, and Delta Lake.
  • Strong experience with object storage architecture, including hot, warm, and cold data tiering strategies.
  • Experience with data federation technologies such as Trino, Denodo, and Dremio.
  • Experience with multimodal/distributed query engines such as Hive, Impala, Apache Kudu, or equivalent technologies.
  • Proven experience designing MPP and distributed compute workloads across on-premise, hybrid, and cloud environments.
  • Strong understanding of hybrid and cloud architecture, including private connectivity technologies such as Direct Connect and ExpressRoute.
  • Experience with workload placement, cloud architecture, egress cost optimisation, and Infrastructure-as-Code.
  • Strong experience building and serving foundation and business data products through APIs, publish-subscribe/event-driven architectures, real-time dashboards, BI platforms, and data marketplaces.
  • Experience supporting AI and agentic workloads, including:

- Retrieval-Augmented Generation (RAG).

- Embedding strategies.

- Vector databases.

- Graph databases.

- Prompt engineering.

- Context management.

- Agentic orchestration and workflows.

  • Strong knowledge of modern vector database technologies, such as Databricks Vector Search, Azure AI Search, Pinecone, ChromaDB, Weaviate, or Snowflake Cortex.
  • Knowledge of graph databases such as Neo4j, JanusGraph, TigerGraph, Cosmos DB, Amazon Neptune, or equivalent.

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