Data Solution Architect

Cube

United States

On-site

USD 120,000 - 160,000

Full time

14 days+

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Job summary

CUBE is a global RegTech business delivering AI-powered SaaS for regulatory intelligence in financial services. The Data Solution Architect defines and owns scalable, secure data architectures and guides engineering, product, and data teams to production‑grade solutions.

You will establish architectural direction, enforce standards, and drive performance and governance while collaborating across regions to ensure reliable delivery and compliance.

Qualifications

  • 7+ years in data architecture, software engineering, or tech leadership.

Responsibilities

  • Design end-to-end data solution architectures that meet scalability, performance, security, and maintainability requirements.

Skills

Data Architecture
SQL & Data Processing
Data Integration
Python
Cloud Platforms
Performance Optimisation
Security & Compliance
DevOps & CI/CD
Technical Leadership
Cross-Team Influence

Tools

SSIS
CI/CD tooling

Job description

CUBE are a global RegTech business defining and implementing the gold standard of regulatory intelligence for the financial services industry. We deliver our services through intuitive SaaS solutions, powered by AI, to simplify the complex and everchanging world of compliance for our clients.

Why us?

CUBE is a globally recognized brand at the forefront of Regulatory Technology. Our industry-leading SaaS solutions are trusted by the world’s top financial institutions globally.

Role Mission

The Data Solution Architect defines and owns the design of scalable, secure, and high-performing data solutions that support customer and operational systems. This role is responsible for setting architectural direction, ensuring alignment with business needs, and guiding teams to deliver robust, production-grade solutions.

The Data Solution Architect works across engineering, product, and data teams to ensure solutions are well-designed, maintainable, and aligned with standards for performance, security, and governance.

Key Responsibilities
  • Design and own end-to-end data solution architectures that meet defined requirements for scalability, performance, security, and maintainability.

  • Translate complex business and product requirements into clear architectural designs, ensuring alignment with enterprise standards and future scalability needs.

  • Define and enforce technical standards for data architecture, including data modelling, integration patterns, and system design.

  • Provide technical leadership and guidance to engineering teams, supporting implementation and ensuring adherence to architectural principles.

  • Review and approve solution designs, code, and implementations to ensure quality, consistency, and alignment with standards.

  • Ensure solutions meet defined performance and reliability benchmarks (e.g. system throughput, latency, fault tolerance).

  • Lead the identification and resolution of complex technical issues, including performance bottlenecks and architectural limitations.

  • Drive improvements in system design, scalability, and maintainability through proactive refactoring and architectural evolution.

  • Define and support implementation of CI/CD, testing, and deployment strategies to ensure reliable and efficient delivery.

  • Ensure all solutions adhere to security, privacy, and compliance requirements, including secure data handling practices.

  • Maintain clear architectural documentation, including system designs, decision records, and operational guidance.

  • Collaborate with cross-functional and global teams to align on architecture, standards, and delivery priorities.

Skills & Competencies
  • Data Architecture & System Design – Strong experience designing scalable, distributed data systems, including data models, storage, and processing layers.

  • SQL & Data Processing – Deep understanding of SQL and data querying, with ability to design efficient data structures and transformations.

  • Data Integration & Pipelines (ETL/ELT) – Expertise in designing and optimising data pipelines (e.g. SSIS or equivalent tools and frameworks).

  • Programming (e.g. Python) – Experience using Python or similar languages for data processing, automation, or pipeline development.

  • Cloud & Platform Technologies – Familiarity with modern data platforms and cloud-based architectures (desirable).

  • Performance & Scalability Optimisation – Ability to design and tune systems to meet performance, reliability, and scalability requirements.

  • Security & Compliance – Strong understanding of secure system design, data protection, and regulatory requirements.

  • DevOps & CI/CD – Experience implementing automated build, test, and deployment pipelines to support reliable delivery.

  • Technical Leadership – Provides architectural guidance, reviews work, and supports teams in delivering high-quality solutions.

  • Cross-Team Influence – Works across teams and regions to align on standards, resolve dependencies, and drive consistency.

Required Experience & Qualifications
  • Proven experience in a data architecture, software engineering, or technical leadership role (typically 7+ years).

  • Strong experience designing and delivering scalable data solutions in production environments.

  • Expertise in data modelling, system design, and integration patterns.

  • Strong experience with SQL and data processing at scale.

  • Experience working with data pipeline and ETL tools (e.g. SSIS or equivalent).

  • Experience with programming languages (e.g. Python) for data processing or automation.

  • Experience defining or contributing to technical standards and architecture frameworks.

  • Proven ability to lead technical design and guide delivery across teams.

  • Strong communication skills, including translating technical concepts for non-technical stakeholders

CUBE is an equal opportunity employer. We celebrate diversity and are committed to creating an inclusive environment for all employees.

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