Data Engineer in Data Product Engineering

Schibsted

Stockholms kommun

Hybrid

SEK 750,000 - 950,000

Full time

7 days ago
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Job summary

Schibsted is seeking a Data Engineer to join the Data Product Engineering team within its Data & AI organization. You will build reliable, well-governed data products used across Finance, HR, Product, and Subscriptions, collaborating with business teams to make data useful and trustworthy.

The role is based in Oslo or Stockholm with a hybrid setup; candidates must reside in Sweden or Norway and work from an office at least two days per week. Strong SQL, Python, and dbt experience are essential.

Qualifications

  • 4+ years of experience in data engineering or a closely related role, with a track record of building reliable data solutions in production environments.
  • Strong SQL skills and solid understanding of data modeling, data warehousing, and data products that are useful, trustworthy and maintainable.
  • Ability to write and debug SQL and Python at a strong professional level; AI-assisted tools welcome but not solely relied upon.
  • Solid software engineering fundamentals in Python, including structuring maintainable applications and applying OO design where appropriate.
  • Hands-on production experience with dbt and familiarity with Airflow, Snowflake, AWS, Terraform, Git, and related tooling.
  • Comfort with pragmatic technical decisions in evolving environments where not everything is defined upfront.
  • Focus on engineering quality, testing, documentation, observability, governance, and cost-efficient pipeline design.
  • Clear communication with both technical and non-technical stakeholders.

Responsibilities

  • Collaborate with stakeholders to translate business needs into pragmatic, well-scoped data solutions.
  • Design, build, and maintain reliable pipelines and transformations in Snowflake, dbt, Airflow, and Python.
  • Develop scalable data models that support analytics, reporting, and future AI use cases.
  • Improve technical quality through testing, documentation, monitoring, and maintainable engineering practices.
  • Contribute to good architectural and implementation decisions across the team.
  • Contribute through code reviews, pairing, and knowledge sharing within the team.
  • Work closely with adjacent platform and Data & AI teams to align on standards, dependencies, and shared ways of working.

Skills

SQL
Python
Data modeling
Data warehousing
dbt
Airflow
Snowflake
AWS
Terraform
Git
Testing
Documentation
CI/CD
Version control
Communication

Tools

Snowflake
dbt
Airflow
AWS
Terraform
Git

Job description

The opportunity in a nutshell

Interested in combining hands‑on data engineering with close collaboration across the business? This role could be a good fit for someone with 4+ years of experience who enjoys building reliable data products and working with others to make them useful.

Role

Join as a Data Engineer in our Data Product Engineering team within Schibsted's Data & AI organization, where we build reliable, well-governed, and scalable data products used across Finance, HR, Product, Subscription, and other parts of the business.

Core tools and practices

Our everyday toolkit includes SQL and Python as core languages, together with Snowflake, dbt, Airflow, AWS, Terraform, and Git, supported by solid engineering practices around testing, documentation, CI/CD, and version control.

Company

Schibsted is home to some of the most established and widely used media brands in the Nordics, including Aftenposten, VG, Svenska Dagbladet, Aftonbladet, E24, Bergens Tidende, and Stavanger Aftenblad. Across our broader Data & AI focus, data, analytics, and AI help us build better products, support smarter decisions, and create value across those newsrooms and businesses.

Location

This role is based in Oslo or Stockholm. We work in a hybrid setup, which means this is not a fully remote role, and candidates need to reside in Sweden or Norway and be able to work from one of our offices at least 2 days a week.

Why this role

You will join a relatively new team with room to contribute, learn, and help shape how we work as we continue to build trusted data products across Schibsted.

Sounds like your kind of role? Read on
Who are you?

We are looking for someone with a solid foundation in data engineering who is also excited by the opportunity to keep learning, deepen their craft, and grow together with the team.

  • You have around 4+ years of experience in data engineering or a closely related role, with a track record of building reliable data solutions in production environments.
  • Strong SQL skills are important, along with a solid understanding of data modeling, data warehousing, and how to design data products that are useful, trustworthy, and maintainable.
  • You can write and debug SQL and Python yourself at a strong professional level. AI-assisted tools are welcome, but this role requires solid enough fundamentals to solve everyday engineering problems without depending totally on them.
  • On the Python side, we are looking for good software engineering fundamentals, including the ability to structure maintainable applications and apply object‑oriented design principles where appropriate.
  • You have hands‑on experience with dbt in production environments and solid working knowledge of the wider toolkit we use, including Airflow, Snowflake, AWS, Terraform, Git, and Python and / or similar tools.
  • You will likely enjoy this role if you are comfortable making pragmatic technical decisions in environments where requirements evolve and not everything is fully defined upfront.
  • You care about engineering quality and can contribute to practices around testing, documentation, observability, governance, and cost‑efficient pipeline design.
  • Clear communication matters just as much as technical strength. We value people who can work well with both technical and non‑technical stakeholders, explain tradeoffs clearly, and contribute positively to team collaboration and knowledge sharing.
What's the job like?

As a Data Engineer, your job is to help us build data as a product, not just pipelines that move data from one place to another. You will create robust data models, improve the reliability and scalability of our pipelines, and help shape the engineering practices that make our data products trusted and reusable across Schibsted Media.

What you will be expected to do
  • Collaborate with stakeholders to translate business needs into pragmatic, well‑scoped data solutions.
  • Design, build, and maintain reliable pipelines and transformations in Snowflake, dbt, Airflow, and Python.
  • Develop scalable data models that support analytics, reporting, and future AI use cases.
  • Improve technical quality through testing, documentation, monitoring, and maintainable engineering practices.
  • Contribute to good architectural and implementation decisions across the team.
  • Contribute through code reviews, pairing, and knowledge sharing within the team.
  • Work closely with adjacent platform and Data & AI teams to align on standards, dependencies, and shared ways of working.
What success looks like

Success in this role means growing into a confident contributor who understands our data landscape, ways of working, and stakeholder needs. Over time, that includes contributing across a mix of smaller support tasks through our weekly rotation as well as larger pieces of work, helping build reliable pipelines and data models, and developing the judgment to deliver pragmatic solutions together with the team. Depending on your experience and the needs of the work, that can mean contributing as part of a team or taking the lead on a project.

Why join us?
  • You will join a team that is still shaping its ways of working, which means there is real room to contribute, learn, and grow.
  • You will work on data products with visible impact across Schibsted, supporting both technical and non‑technical users in domains such as Product, Subscription, Finance, and HR.
  • You will be part of a company whose work matters in everyday life across the Nordics, helping support trusted media brands through better data, analytics, and AI capabilities.
  • You will work in an international environment with strong trust, autonomy, and good opportunities for learning through engineering communities and collaboration across Data & AI.
  • You will join a team that enjoys solving challenging problems, wants to build high‑quality data products, and cares about the people they work with.

The application period closes on 28 September 2026. We review applications on a rolling basis, so we encourage you to apply as soon as possible.

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