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Engineering Manager, ML Platform, Tokyo

マネーフォワードJapanエンジニアリングマネージャー
AWSAirflowApacheDatabricksECSFastAPIGitHubGitHub ActionsIAMLambdaPythonS3Terraform

業務内容

  • Define the ML platform strategy and roadmap; translate business needs into technical specifications and architecture.
  • Design and oversee large-scale data engineering (ETL/DWH/data lakes) for high-traffic environments using Databricks and AWS; optimize performance.
  • Establish governance and security by design (IAM, permissions, auditable foundations) aligned with model risk management principles.
  • Align with Engineering, Legal, Compliance, and Business to prioritize initiatives and drive cross-functional execution.
  • Own end-to-end delivery from technology selection to operations; drive platform standardization across the company.

技術スタック

必須スキル

  • Software engineering ≈5+ years (backend/infrastructure/data platforms) and technical leadership experience.
  • Architecture decisions/technical direction as tech lead or PM.
  • Data engineering experience with large-scale datasets (ETL/DWH/data lakes) and performance tuning.
  • Strong documentation skills for clear specs and design rationale.

歓迎スキル(該当する場合)

  • Hands-on MLOps with SageMaker and/or Databricks.
  • Financial domain knowledge (credit/risk) and familiarity with FISC security guidelines.
  • Product management track record and roadmap ownership under technical constraints。

キャリア成長観点

-Enterprise-scale ML Platform in finance: shape architecture, governance, and security end-to-end. -Cross-functional impact via collaboration with Legal/Compliance and Business; influence company-wide MLOps standards. -Hands-on exposure to AWS/SageMaker/Databricks and data governance; tangible platform-level impact. -Develop leadership, strategic planning, and delivery discipline alongside technical excellence.

データ取得日: 2026/9/10

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