Senior Data & Analytics Engineer, Domain Enablement (R5536)

Shield

Oslo

Hybrid

NOK 1,143,000 - 1,714,000

Full time

14 days+
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Benefits offered by this job

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Job summary

Shield AI is seeking a Senior Data & Analytics Engineer to enable business domains on the Databricks platform by building governed Silver and Gold assets and reusable semantic patterns. This hybrid role blends data engineering with analytics engineering, requiring depth in transformations and lakehouse patterns as well as business fluency for modeling that stakeholders can trust.

Initial focus is on G&A and GTM domains such as Accounting, Program Finance, RevOps, Marketing, HR, with room to grow

Qualifications

  • 5+ years in analytics/BI/data engineering or hybrid modeling/transformation roles.
  • Strong dimensional modeling and semantic design skills.
  • Strong SQL and Databricks experience; translate business requirements into reusable data models.
  • Fluency to work with enterprise data transformations and production deployments.
  • Ability to collaborate with business stakeholders on evolving definitions.

Responsibilities

  • Build and maintain Silver and Gold data models, domain marts, curated datasets, and semantic assets for priority domains onboarding to Databricks.
  • Partner with stakeholders to translate domain requirements and KPI definitions into governed, testable transformations.
  • Apply enterprise modeling standards and contribute improvements to those standards.
  • Create reusable domain patterns and analytical building blocks for self-service analytics.
  • Support semantic views for BI tools, Databricks SQL, and AI/BI experiences.
  • Work across domain boundaries to manage overlapping metrics.
  • Ensure data sensitivity and approved use in modeling and semantic exposure.
  • Review partner-delivered data models for production readiness and alignment with enterprise definitions.
  • Help domain teams grow into self-service analytics with guidance and documentation.

Skills

Analytics engineering
BI engineering
Data modeling
SQL
Databricks
Domain knowledge
Communication

Tools

Databricks
Delta Live Tables

Job description

Shield AI is a venture-backed defense-tech company with the mission of protecting service members and civilians with intelligent systems. Its products include Hivemind autonomy software, V-BAT and X-BATaircraft, and Aechelon simulation and synthetic reality technologies. With offices and facilities across the U.S., Europe, the Middle East, and Asia-Pacific, Shield AI’s technology actively supports operations worldwide. Visit www.shield.ai. Follow Shield AI on LinkedIn, X, Instagram, and YouTube.

Job Description:

The Senior Data & Analytics Engineer is a hybrid builder role focused on enabling business domains onto the Databricks platform by developing governed Silver and Gold assets, reusable semantic patterns, and domain-ready analytical models. This role sits between pure data engineering and pure analytics engineering: it requires enough technical depth to work comfortably with transformations and lakehouse patterns, and enough business fluency to build trustworthy models that business stakeholders can use and extend.

Initial focus for this role is expected to be G&A and GTM-oriented domains such as Accounting, Program Finance, RevOps, Marketing, HR, and adjacent business functions, while remaining flexible enough to support more complex future domains such as Product or Engineering as the team matures. This role is not a dashboard factory; it is responsible for durable, governed datasets and semantic assets that accelerate domain self-service while maintaining enterprise consistency.

What you'll do:
  • Build and maintain Silver and Gold data models, domain marts, curated datasets, and semantic assets for priority domains onboarding to Databricks.
  • Partner directly with business stakeholders to translate domain requirements and KPI definitions into governed, testable, and reusable transformation logic.
  • Apply enterprise modeling standards, naming conventions, semantic definitions, and promotion rules, contributing practical improvements back into those standards.
  • Create reusable domain patterns and analytical building blocks that allow teams such as FP&A, RevOps, and Marketing to operate more self-service over time.
  • Support the design of semantic views and curated layers that can be consumed by BI tools, Databricks SQL, and Genie or related AI/BI experiences.
  • Work across domain boundaries when metrics overlap or interact, especially where G&A, GTM, workforce, and product-adjacent concepts intersect.
  • Ensure data sensitivity, classification, and approved use are reflected in modeling choices, joins, and semantic exposure, particularly for regulated or restricted datasets.
  • Review and refine partner-delivered or domain-contributed data models to ensure they are production-worthy, understandable, and aligned with enterprise definitions.
  • Help domain teams grow into more self-service analytics by providing patterns, documentation, examples, and technical guidance rather than permanently centralizing every request.
Required qualifications:
  • 5+ years of experience in analytics engineering, BI engineering, data engineering, or a hybrid role spanning modeling and transformation work.
  • Strong dimensional modeling and semantic design skills, including facts, dimensions, grain, conformed dimensions, and business-friendly analytical structures.
  • Strong SQL skills and comfort working with modern cloud data platforms such as Databricks.
  • Ability to translate ambiguous business requirements into precise, auditable, and reusable data models.
  • Enough data engineering fluency to work comfortably in Silver-to-Gold transformations, testing, performance tuning, and production deployment contexts.
  • Ability to understand the business meaning and usage constraints of the data being modeled, not just the technical transformations involved.
  • Strong communication skills and comfort working directly with business stakeholders in domains with evolving definitions and priorities.
Preferred qualifications:
  • Experience in finance, program finance, RevOps, marketing analytics, HR analytics, product analytics, or another cross-functional business domain.
  • Experience building modular, tested transformation pipelines on Databricks (SQL/pyspark, Delta Live Tables, or equivalent).
  • Experience with semantic layer tooling, governed metrics, or AI/BI consumption layers.
  • Experience in regulated or security-sensitive industries.
  • Ability and interest to expand from initial G&A/GTM domain focus into more technical domains such as Product or Engineering over time.

$120,000 - $180,000 a year

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#LC

Full-time regular employee offer package:

Pay within range listed + Bonus + Benefits + Equity

Temporary employee offer package:

Pay within range listed above + temporary benefits package (applicable after 60 days of employment)

Salary compensation is influenced by a wide array of factors including but not limited to skill set, level of experience, licenses and certifications, and specific work location. All offers are contingent on a cleared background and possible reference check. Military fellows and part-time employees are not eligible for benefits. Please speak to your talent acquisition representative for more information.

###

Shield AI is proud to be an equal opportunity workplace and is an affirmative action employer. We are committed toequal employment opportunity regardless of race, color, ancestry, religion, sex, national origin, sexual orientation, age, marital status, disability, gender identity or Veteran status. If you have a disability or special need that requires accommodation, please let us know.

We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses and identifying potential inconsistencies or verification signals in application materials based on available information. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more information about how your data is processed, please contact us.

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