Nordea Bank Abp logo
Est. Monthly
Estimated €2,630 - €3,184
Posted August 7, 2026 · 0 days agoLast seen August 7, 2026Deadline August 13, 2026

AI Data Engineer

AI Data Engineer (Snowflake + AI)
Warsaw, Poland
Hybrid · Data & Analytics
Full-time · Mid-Level
English
No People Management
8 years experience
How this salary compares
Salary Context: AI Data Engineer

Hover or tap a row for full statistics (EUR / month on this chart).

Salary analysis

Compared with the selected benchmark ("All roles in Warsaw, Poland"), this listing's salary midpoint is about 97% lower. The offer sits below the benchmark range (€3,324–€14,814). The listed pay band (€219–€265) is tighter than the benchmark, which suggests lower salary variability. This benchmark is based on 16 comparable listings.

Monthly salary comparison for AI Data Engineer
MarketLower bound (25th percentile)MedianUpper bound (75th percentile)
All roles in Warsaw, Poland€3,324/per month€6,158/per month€14,814/per month
Pay in our data — not quoted in ad (Mid-Level)€219/per month€242/per month€265/per month
About the role

Welcome to Group Technology, where we pride ourselves on engineering solutions and direct Nordea’s transformation by providing a holistic technological view and structured understanding of the bank, and its surrounding environment to enable the Customer Vision and the Business Strategy. Nordea is a place where traditions meet tomorrow. We're not just a bank, we're a tech employer on a mission to evolve finance securely and responsibly. Together, we impact millions of people’s daily lives by ensuring they can access our solutions anytime, anywhere, while safeguarding their personal data and wealth. Join us in making an impact on the banking industry. About our team The main goal of this role is to help us build and establish AI processes around our data. We work on financial and regulatory datasets in Snowflake and we want to start using AI meaningfully — not as a productivity gimmick, but as a serious part of how we work with data: surfacing insights, assisting engineers, and empowering business users who interact with our data platform. You'll own this space. That means figuring out what's worth building, what's feasible within a regulated banking environment, and then actually building it — from Snowflake Cortex integrations to LLM-assisted tooling for the engineering team to AI-powered features in our Streamlit self-service platform. Like everyone on the team, you work cross-functionally — from understanding what the data represents in a banking context, through development and testing, to owning CI/CD and deployment. We don't expect you to arrive with every answer. The team will support you with domain context, existing patterns, and shared knowledge — and you'll have people around you who are invested in your growth, not just your output. Main responsibilities in this role: Define and establish AI processes around our data — identify where AI adds real value, design the approach, and own the implementation Must have a good understanding of MCPs, Context Engineering and relevant tools that supports LLM integrations Must have an experience in productionized Agentic AI solutions with market/Industry standards decision making Agents Build LLM-powered features into our Streamlit-in-Snowflake platform (e.g. natural-language query interfaces, anomaly detection, schema explanation for business users in Finance and Risk) Work with Snowflake Cortex (LLM functions, Cortex Search, Cortex Analyst) to bring AI capabilities directly into our Snowflake environment Design RAG pipelines over our structured and semi-structured data — metadata catalogs, transformation configs, code repositories Develop AI-assisted tooling for the engineering team: SQL review assistants, documentation agents, test generators Contribute to team AI practices — how we use Copilot, what context we maintain, how we evaluate output quality Build and maintain Snowflake transformation pipelines alongside AI work — stored procedures, Snowpark (Python/Scala), Dynamic Tables Engage in requirement analysis — understand domain and data context before building solutions Own CI/CD for your deliverables end-to-end Who you are Your background and skills include: Must have: 8+ years in data engineering or ML engineering with production Snowflake experience Strong SQL and Snowpark (Python or Scala) At least 1 year working with LLMs in production — API integrations, structured outputs, tool use, retrieval Practical experience with: Snowflake Cortex, Anthropic API, OpenAI API, or Azure OpenAI Airflow, Bitbucket, CI/CD — end-to-end ownership, not just code delivery Nice to have: Agentic frameworks (LangGraph, Claude Agent SDK) Streamlit in Snowflake LLM evaluation frameworks (LLM-as-judge, golden sets, prompt regression testing) Financial services or banking domain knowledge — credit risk, finance, or regulatory data background. You need to understand what the data means to build something useful on top of it Mindset: Comfortable working across the full delivery lifecycle — analysis, development, testing, deployment Thinks about cost, latency, and determinism when designing AI features Working with AI: Genuine fluency with LLMs — understands how they work, where they're useful, and where they fail Actively tracks the AI tooling market: new models, coding assistants, Snowflake Cortex updates, agentic frameworks Knows how to maintain context files and prompt standards so the whole team benefits from AI tooling, not just the person who figured it out Treats AI output as a starting point — reviews, tests, and owns what gets committed What we offer Collaboration. Ownership. Passion. Courage. These are the values that guide us in how we work and how we make decisions – and that we imagine you share with us. People are driven by many different factors. For some, it’s to take their career to the next level. For others, it’s to break new ground within their area of expertise – in other words, with us, you will always move forward. A culture that fosters performance and growth in one of the largest Nordic banks, offering various opportunities to evolve, develop and learn from brilliant colleagues with diverse backgrounds in a vibrant working environment. Hybrid working model – we believe in the value of bringing people together and at the same time we embrace the freedom of flexibility. Diversity and inclusion are a natural part of our daily work. We know that an inclusive workplace is a sustainable one. We genuinely believe that our diverse backgrounds, experiences, characteristics and traits make us stronger together. Every day we strive to find new ways to improve diversity and inclusion within our community e.g. we have signed the European Diversity Charters in the countries where we operate to show our commitment and engage with others to continue learning and improving.

Job Details

Responsibilities

  • Define and establish AI processes around data, identifying value and owning implementation
  • Build LLM-powered features into Streamlit-in-Snowflake platform (natural-language queries, anomaly detection)
  • Utilize Snowflake Cortex (LLM functions, Cortex Search, Cortex Analyst) for AI capabilities
  • Design RAG pipelines over structured and semi-structured data
  • Develop AI-assisted tooling for engineers (SQL review assistants, documentation agents, test generators)
  • Build and maintain Snowflake transformation pipelines using stored procedures, Snowpark, and Dynamic Tables
  • Engage in requirement analysis and own CI/CD for deliverables end-to-end

Requirements

  • 8+ years in data engineering or ML engineering with production Snowflake experience
  • Strong SQL and Snowpark (Python or Scala)
  • At least 1 year working with LLMs in production (API integrations, structured outputs, tool use, retrieval)
  • Practical experience with Snowflake Cortex, Anthropic API, OpenAI API, or Azure OpenAI
  • Experience with Airflow, Bitbucket, and CI/CD end-to-end ownership

Skills & Technologies

SnowflakeSnowparkPythonScalaSQLLLMSnowflake CortexAnthropic APIOpenAI APIAzure OpenAIRAGStreamlitAirflowBitbucketCI/CD

Recruitment Process

  1. 1
    Preliminary CV selection
  2. 2
    Phone conversation with the recruiter
  3. 3
    Online interview with the hiring leader
  4. 4
    Background check
Seen 3 hours agoContent Complete
Nordea Bank Abp logo
Nordea BankAbp · 244 open roles
Top locations: Helsinki, Finland · 127 · Remote - Global · 41 · Remote - Finland · 19+15 other locations
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