ml engineer for renewable energy asset monitoring (Madrid)

ml engineer for renewable energy asset monitoring (Madrid)

26 sep
|
Enfint
|
Madrid

26 sep

Enfint

Madrid

Описание: DNV is an independent expert in assurance and risk management. Its Energy Systems division helps customers navigate the transition to a decarbonized and sustainable energy future by assuring that energy systems operate safely and effectively through increasingly digital solutions. Digital and Data Solutions develops software and data-driven solutions for challenges in energy, infrastructure, and sustainability. Задачи:

Design and implement a scalable architecture for role-based AI agents supporting asset management, asset ownership, O&M;, predictive maintenance, trading, and analytical workflows; Define agent responsibilities, tools, interaction patterns, task delegation, context sharing, and hand-offs between specialised agents; Integrate agents with Horizon data sources, including operational time-series data, alarms, events, asset metadata, analytical results, forecasts, reports, logbooks, and technical documentation; Build evaluation frameworks and representative test datasets covering answer quality, groundedness, tool selection, workflow completion, hallucination risk, safety, regression, latency, and operational reliability; Implement observability and traceability across agent execution, including prompts, retrieved context, tool calls, model responses, decisions, failures, and user feedback; Deploy and operate AI services in production with software and platform engineers; Collaborate with renewable energy domain experts to ensure agent outputs are technically meaningful, evidence-based, and appropriate for operational decision-making; Stay informed about developments in LLMs, agent orchestration, multimodal systems, evaluation, and AI engineering, and assess them for production use. Требования:





Master's degree in Computer Science, Artificial Intelligence, Machine Learning, Data Science, Mathematics, or a related field, or equivalent practical experience; Proven experience building AI agents, agentic workflows, or AI assistants, preferably in production environments; Experience with Retrieval-Augmented Generation (RAG), embeddings, vector search, and prompt engineering; Strong Python software engineering skills and experience developing production-grade applications; Experience integrating AI solutions with APIs, databases, and enterprise systems; Familiarity with Git, CI/CD, Docker, and cloud-native development practices; Strong communication skills and fluency in written and spoken English; Curiosity, adaptability, and proactive collaboration in fast-moving environments; Ownership of projects and ability to communicate complex AI concepts clearly to technical and non-technical stakeholders; A short report or demo of an AI agent built by the candidate is required as part of the interview process; Final candidates must undergo background checks in accordance with applicable country-specific laws and practices; Nice to have: experience deploying AI workloads on Kubernetes, experience with self-hosted LLMs and model serving, familiarity with ClickHouse, MongoDB, vector databases, and time-series data platforms. Условия:

Medical Scheme; Commuting Allowance; Life Insurance; Pension Plan; Kindergarten Allowance; 40 Hours per week with a versátil schedule; Home working allowance up to 2 days per week; 23 Days of annual leave; Employee Referral scheme; Coaching, mentoring, international networks, individual competence development plans, and tailored training.

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📌 ml engineer for renewable energy asset monitoring (Madrid)
🏢 Enfint
📍 Madrid

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