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Big Data Engineer Web3

Open 23d

You will design, build, and operate large-scale distributed data systems and core compute and storage infrastructure. You will develop orchestration, APIs, developer tools, telemetry, and automated operational workflows. You will embed LLM-driven capabilities into the platform, including MCP tools, scheduling and cost-optimization agents, SLA monitoring, anomaly detection, context retrieval, and incident-response pipelines. You will also define infrastructure policies, reliability standards, cost metrics, and platform contracts across multi-cloud environments.

Responsibilities

  • Design and operate large-scale distributed data systems
  • Own big data compute and storage infrastructure using MaxCompute, ODPS, Hologres, and Spark
  • Build and maintain multi-site task orchestration that selects engines dynamically and enforces policy
  • Improve reliability and performance across batch and real-time pipelines
  • Develop MCP tool interfaces for AI agents to interact with platform APIs
  • Build scheduling and cost-optimization agents for resource allocation and alert severity
  • Instrument platform telemetry for AI-driven SLA monitoring and anomaly detection
  • Design RAG and vector-search context retrieval pipelines for SQL code and configuration knowledge bases
  • Own the internal data development platform, including IDE integrations, code review automation, and deployment tooling
  • Build API-first tools for backfills and ingestion automation
  • Define platform contracts with data warehouse and service teams
  • Establish SLA benchmarks, cost metrics, and latency dashboards
  • Build automated incident-response and root-cause-analysis pipelines
  • Define and enforce infrastructure policies across multi-cloud environments
  • Design and maintain the cross-platform MCP tool layer

Requirements

  • Have 5+ years of experience building large-scale data platforms using Hadoop, Spark, Flink, or equivalent technologies
  • Have deep expertise in distributed storage and compute systems, including MaxCompute, Hologres, ClickHouse, and Hive
  • Have strong software engineering skills in Java, Scala, or Python
  • Have experience with API-first design
  • Have hands-on experience with task scheduling systems such as Airflow, DolphinScheduler, or equivalent systems
  • Understand multi-cloud architectures and cost governance
  • Be familiar with LLM integration patterns, including tool calling, RAG pipelines, and context management
  • Have experience with MCP or similar agent-tool frameworks
  • Have a current right to work in Singapore without requiring visa sponsorship

Benefits

  • Wellness allowances
  • Meal allowances
  • Comprehensive healthcare schemes for employees and dependants

See also

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