Senior Gen AI Engineer (R-18860)
Dnb · Chennai - India
Skills in this posting
Extracted from the posting text by the instrument — the demand side, read literally.
The posting
Shape the Future with Dun & Bradstreet
At Dun & Bradstreet, we believe data has the power to create a better tomorrow. As a global leader in business decisioning data and analytics, we help companies worldwide grow, manage risk, and innovate. For over 180 years, businesses have trusted us to turn uncertainty into opportunity. We’re a diverse, global team that values creativity, collaboration, and bold ideas. Are you ready to make an impact and help shape what’s next? Join us! Explore opportunities at dnb.com/careers.
We are looking for an experienced AI Engineer to design, build, and operationalize AI driven solutions for our global Analytics organization. The ideal candidate will have strong hands-on expertise in Python, PySpark, agentic workflow development, and modern GenAI frameworks, with experience building scalable applications using LLMs, retrieval systems, and automation pipelines.
Key Responsibilities
Agent Development & Architecture
Build agentic workflows using LangChain/LangGraph and similar frameworks.
Develop autonomous agents for data validation, reporting, document processing, and domain workflows.
Deploy scalable, resilient agent pipelines with monitoring and evaluation.
GenAI Application Engineering
Develop GenAI applications using models like GPT, Gemini, and LLaMA.
Implement RAG, vector search, prompt orchestration, and model evaluation.
Partner with data scientists to productionize POCs.
Data & Platform Engineering
Build distributed data pipelines (Python, PySpark).
Develop APIs, SDKs, and integration layers for AI-powered applications.
Optimize systems for performance and scalability across cloud/hybrid environments.
MLOps / LLMOps
Contribute to CI/CD workflows for AI models—deployment, testing, monitoring.
Implement governance, guardrails, and reusable GenAI frameworks.
Collaboration & Stakeholder Engagement
Work with analytics, product, and engineering teams to define and deliver AI solutions.
Participate in architecture reviews and iterative development cycles.
Support knowledge sharing and internal GenAI capability building.
Key Skills
5–8 years of experience in AI/ML engineering, data science, or software engineering, with atleast 2 years focused on GenAI.
Strong programming expertise in Python, distributed computing using PySpark, and API development.
Hands on experience with LLM frameworks (LangChain, LangGraph, Transformers, OpenAI/Vertex/Bedrock SDKs).
Experience developing AI agents, retrieval pipelines, tool calling structures, or autonomous task orchestration.
Solid understanding of GenAI concepts: prompting, embeddings, RAG, evaluation metrics, hallucination identification, model selection, fine tuning, context engineering.
Experience with cloud platforms (Azure/AWS/GCP), containerization (Docker), and CI/CD pipelines for ML/AI.
Strong problem solving, system design thinking, and ability to translate business needs into scalable AI solutions.
Excellent verbal, written communication and presentation skills.
Excerpt from the original listing. The full, current text lives at the source. Read and apply there →
The PivotHop read
- What an ai engineer actually earnsmedian, seniority, by country
- Where ai engineers move nextevery measured route out
- Machine Learning Engineer → AI Engineer60% readiness
- Prompt Engineer → AI Engineer53% readiness
- MLOps Engineer → AI Engineer47% readiness
- All open ai engineer rolesthe full board
Where these skills also reach
Adjacent occupations measured from the same postings — readiness is what an ai engineer’s profile already covers.
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