Software Engineer (Data & AIML)

Posted Yesterday
Be an Early Applicant
2 Locations
In-Office
Mid level
Logistics • Transportation
The Role
Design and build scalable data and AI platforms, including trusted data foundations, batch and streaming pipelines, ML systems, GenAI and agentic AI solutions. Develop RAG, vector search, tool-calling, APIs, workflows, governance, security controls, monitoring, and observability. Contribute to architecture, testing, CI/CD, technical design, code reviews, and engineering standards while mentoring engineers and enabling reusable supply-chain intelligence capabilities.
Summary Generated by Built In

About Maersk

Maersk is building the next generation of digital capabilities for the global supply chain.

We are re-architecting our platform with a data-first approach — building a trusted, scalable and reusable data foundation for current and future supply-chain use cases.

On top of this foundation, we will build ML models, intelligence, recommendations, GenAI and agentic AI to help customers and teams make better and faster decisions.

A key part of this vision is data democratization — making trusted and contextualised data easy to discover, understand and use across teams, products, models and AI agents.


About the Role

We are looking for an experienced Data, AI/ML, GenAI & Agentic AI Engineer to help design and build this platform from the ground up.

This role combines data engineering, software engineering, AI/ML and architecture. You will build reusable platform capabilities rather than one-off solutions and work closely with engineers, data scientists, architects, product teams and supply-chain experts.


What You Will Do

• Design and build scalable data and AI architecture for data-intensive systems.

• Build trusted data foundations and reusable data products from multiple sources.

• Build reliable batch, streaming and near-real-time data pipelines based on business needs.

• Enable data democratization and self-service access to trusted data.

• Build capabilities for data quality, governance, lineage, metadata, security and observability.

• Establish common business context and semantics so data can be effectively used by applications, ML models, GenAI and AI agents.

• Develop and productionise ML solutions for prediction, forecasting, risk, anomaly detection, recommendations and optimisation

Build production-grade GenAI/LLM solutions using approaches such as RAG, embeddings, vector search and tool calling.

• Build agentic AI solutions that can reason over trusted data, use tools and APIs, provide recommendations and take actions.

• Design appropriate guardrails, access controls, monitoring and human oversight for AI and agentic solutions.

• Build reusable APIs, services and workflows that connect data, applications and AI capabilities.

• Use platforms such as Pipedream or similar workflow tools where they add value.

• Make architecture and technology decisions considering scalability, reliability, security, performance and cost.

• Establish strong engineering practices including testing, CI/CD and observability.

• Contribute to architecture reviews, technical design and code reviews. • Mentor engineers and help establish engineering and architecture standards


About You

We are looking for someone with strong engineering, data and AI fundamentals who can build production-ready systems.

You should have:

• 4+ years of experience in software engineering, data engineering, AI/ML engineering or a related field.

• Experience designing and building scalable, distributed and data-intensive systems.

• Experience contributing to or owning architecture and technical design for data or AI platforms.

• Strong programming skills in Java and Python. Experience with Scala, Kotlin or similar languages is a plus.

• Strong understanding of data architecture, data modelling, distributed systems and data processing.

• Experience building data pipelines, data products or data platforms at scale. • Experience with technologies such as Kafka, Spark, Databricks, Flink or equivalent.

• Experience with relational and/or NoSQL databases

• Good understanding of data quality, governance, metadata, lineage and observability.

• Hands-on experience taking ML models from development to production, including deployment, monitoring and evaluation.

• Experience with GenAI/LLMs and building practical, production-ready applications.

• Understanding of RAG, embeddings, vector search, tool calling and LLM evaluation.

• Experience or strong exposure to AI agents and agentic workflows.

• Understanding of AI security, guardrails, access control and human oversight.

• Experience with at least one cloud platform such as Azure, AWS or Google Cloud.

• Strong software engineering practices including automated testing, CI/CD and production operations.

• Strong communication and problem-solving skills. • A platform mindset — focused on building reusable capabilities rather than oneoff solutions.
Good to Have

• Experience in logistics, shipping, transportation or supply chain.

• Experience with real-time and event-driven architectures.

• Experience with MLOps and model monitoring.

• Experience with production RAG, AI agents or agent orchestration.

• Experience with MCP or similar agent/tool integration patterns.

• Experience with knowledge graphs, semantic models or entity resolution.

• Experience with Pipedream or similar workflow/integration platforms.

• Experience with Docker, Kubernetes and cloud-native architectures.

• Experience leading technical design or architecture for large-scale platforms.


Why This Role


This is a greenfield opportunity to help build the foundation for the next generation of supply-chain intelligence at Maersk. Our vision is: Data Foundation → Data Products & Context → ML & Intelligence → Recommendations → GenAI → Agentic AI The data foundation is the core layer, providing trusted, reusable and contextualised data to products, ML models, GenAI applications and AI agents.

The goal is to build a platform where new data and AI capabilities can be developed faster, reused across multiple use cases and scaled across the supply chain without repeatedly rebuilding the underlying foundation. You will help shape the architecture, data foundation, engineering practices and AI capabilities that will enable future digital supply-chain experiences at Maersk.

Maersk is committed to a diverse and inclusive workplace, and we embrace different styles of thinking. Maersk is an equal opportunities employer and welcomes applicants without regard to race, colour, gender, sex, age, religion, creed, national origin, ancestry, citizenship, marital status, sexual orientation, physical or mental disability, medical condition, pregnancy or parental leave, veteran status, gender identity, genetic information, or any other characteristic protected by applicable law. We will consider qualified applicants with criminal histories in a manner consistent with all legal requirements.

 

We are happy to support your need for any adjustments during the application and hiring process. If you need special assistance or an accommodation to use our website, apply for a position, or to perform a job, please contact us by emailing  [email protected]. 

Skills Required

  • 4+ years of experience in software engineering, data engineering, AI/ML engineering, or a related field
  • Experience designing and building scalable, distributed, data-intensive systems
  • Experience contributing to or owning architecture and technical design for data or AI platforms
  • Strong programming skills in Java and Python
  • Strong understanding of data architecture, data modeling, distributed systems, and data processing
  • Experience building data pipelines, data products, or data platforms at scale
  • Experience with Kafka, Spark, Databricks, Flink, or equivalent technologies
  • Experience with relational and/or NoSQL databases
  • Understanding of data quality, governance, metadata, lineage, and observability
  • Hands-on experience deploying, monitoring, and evaluating machine learning models in production
  • Experience building practical, production-ready GenAI or LLM applications
  • Understanding of RAG, embeddings, vector search, tool calling, and LLM evaluation
  • Experience or strong exposure to AI agents and agentic workflows
  • Understanding of AI security, guardrails, access controls, and human oversight
  • Experience with at least one cloud platform: Azure, AWS, or Google Cloud
  • Strong software engineering practices, including automated testing, CI/CD, and production operations
  • Strong communication and problem-solving skills
  • Platform mindset focused on reusable capabilities rather than one-off solutions
  • Experience with Scala, Kotlin, or similar programming languages
  • Experience in logistics, shipping, transportation, or supply chain
  • Experience with real-time and event-driven architectures
  • Experience with MLOps and model monitoring
  • Experience with production RAG, AI agents, or agent orchestration
  • Experience with MCP or similar agent/tool integration patterns
  • Experience with knowledge graphs, semantic models, or entity resolution
  • Experience with Pipedream or similar workflow/integration platforms
  • Experience with Docker, Kubernetes, and cloud-native architectures
  • Experience leading technical design or architecture for large-scale platforms

A.P. Moller - Maersk Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about A.P. Moller - Maersk and has not been reviewed or approved by A.P. Moller - Maersk.

  • Healthcare Strength — Company materials and job postings consistently highlight comprehensive medical, dental, and vision coverage, with U.S. transparency-in-coverage links indicating established group plans. These benefits are framed as part of a global rewards approach that aims for a consistent experience across markets.
  • Retirement Support — U.S. roles commonly include a 401(k) with company match, reflected across multiple current postings. Disclosures also describe retirement savings as a core element of the company’s global benefits framework.
  • Parental & Family Support — A global minimum of 18 weeks of fully paid maternity leave signals a strong baseline for family benefits. Guidance encourages candidates to clarify local parental provisions, reflecting structured policy with country-specific application.

A.P. Moller - Maersk Insights

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The Company
HQ: Copenhagen
58,338 Employees

What We Do

A.P. Moller - Maersk is an integrated transport and logistics company; going all the way, together, for our customers and society. ALL THE WAY is our commitment to connect the world so that everyone has both the possibility and the ability to trade, grow and thrive. The company employs roughly 110.000 employees across operations in 130 countries.

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