Senior AI Engineer / Data Scientist (Agentic AI)
Chennai, India
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- Employment
Full-time — employment source
Senior AI Engineer / Data Scientist (Agentic AI) Experience: 8+ Years Location: Office Employment Type: Full-Time / Consultant Role Overview
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What you’ll work on
Full postingWe are seeking a highly skilled Senior AI Engineer / Data Scientist with 8+ years of experience in building enterprise-scale AI, Machine Learning, Data Science, and Generative AI solutions.
This role requires a mix of Data Science, AI Engineering, MLOps, Cloud Engineering, and Software Development skills to develop next-generation autonomous AI platforms that deliver measurable business outcomes.
Design and develop Agentic AI solutions using autonomous and multi-agent frameworks.
Implement prompt engineering, prompt tuning, and evaluation frameworks.
Develop predictive and prescriptive analytics models.
From the employer’s posting
We are seeking a highly skilled Senior AI Engineer / Data Scientist with 8+ years of experience in building enterprise-scale AI, Machine Learning, Data Science, and Generative AI solutions. The ideal candidate should possess strong expertise in designing and implementing Agentic AI systems, multi-agent architectures, LLM orchestration frameworks, RAG pipelines, and AI-driven automation solutions.
This role requires a mix of Data Science, AI Engineering, MLOps, Cloud Engineering, and Software Development skills to develop next-generation autonomous AI platforms that deliver measurable business outcomes.
Agentic AI & Generative AI Design and develop Agentic AI solutions using autonomous and multi-agent frameworks. Build AI agents capable of reasoning, planning, tool usage, memory management, and workflow orchestration.
Fine-tune and optimize LLMs for enterprise use cases. Implement prompt engineering, prompt tuning, and evaluation frameworks. Develop RAG (Retrieval Augmented Generation) architectures.
Data Science & Machine Learning Develop predictive and prescriptive analytics models. Build recommendation systems and forecasting solutions.
What you’ll bring
All qualificationsCore experience
- Bachelor's or Master's degree in:
- 8+ years in Data Science, Machine Learning, AI Engineering, or Software Engineering.
- 3+ years of hands-on experience with Generative AI and LLMs.
- 2+ years of hands-on experience implementing Agentic AI solutions.
- Experience delivering enterprise-scale AI platforms.
Qualification wording
Bachelor's or Master's degree in:
8+ years in Data Science, Machine Learning, AI Engineering, or Software Engineering.
3+ years of hands-on experience with Generative AI and LLMs.
2+ years of hands-on experience implementing Agentic AI solutions.
Experience delivering enterprise-scale AI platforms.
Tools in this posting
- Python
- Azure
- SQL
- AWS
- Databricks
- SageMaker
- scikit-learn
- PyTorch
- TensorFlow
- Xgboost
- Huggingface
- Fastapi
Source — Tool mentions in context
Strong hands-on programming expertise in: - Python (Mandatory) - SQL
Must Have ✅ Agentic AI Frameworks ✅ Generative AI & LLMs ✅ RAG Architecture ✅ Vector Databases ✅ Python Development ✅ Machine Learning & Data Science ✅ Azure AI Services ✅ MLOps & CI/CD ✅ REST APIs ✅ Cloud Architecture Good to Have
- Integrate vector databases such as: - Azure AI Search - Milvus
Cloud & Platform Engineering Azure (Preferred) - Azure OpenAI
Azure (Preferred) - Azure OpenAI - Azure AI Search
- Azure OpenAI - Azure AI Search - Azure Machine Learning
- Azure AI Search - Azure Machine Learning Other Cloud Platforms
Preferred Certifications - Microsoft Certified: Azure AI Engineer Associate - Microsoft Certified: Azure Data Scientist Associate
- Microsoft Certified: Azure AI Engineer Associate - Microsoft Certified: Azure Data Scientist Associate - Databricks Certified Data Engineer
- Python (Mandatory) - SQL - REST APIs
Other Cloud Platforms - AWS Bedrock - Amazon SageMaker
- Databricks Certified Data Engineer - AWS Machine Learning Specialty - Generative AI Certifications (Microsoft/OpenAI)
Good to Have ✅ Semantic Kernel ✅ Microsoft Fabric ✅ Databricks ✅ Knowledge Graphs ✅ GraphRAG ✅ Multi-Agent Systems ✅ AI Governance Frameworks ✅ Copilot Studio Preferred Certifications
- Microsoft Certified: Azure Data Scientist Associate - Databricks Certified Data Engineer - AWS Machine Learning Specialty
- AWS Bedrock - Amazon SageMaker - Google Vertex AI
- Build and deploy models using: - Scikit-Learn - XGBoost
- TensorFlow - PyTorch - Hugging Face
- XGBoost - TensorFlow - PyTorch
- Scikit-Learn - XGBoost - TensorFlow
- PyTorch - Hugging Face AI Engineering Responsibilities
Experience with: - FastAPI - Microservices Architecture
Job description
Job
Description
Senior
AI Engineer / Data Scientist (Agentic AI)
Experience: 8+ Years
Location: Office
Employment Type: Full-Time / Consultant
Role
Overview
We are
seeking a highly skilled Senior AI Engineer / Data Scientist with 8+
years of experience in building enterprise-scale AI, Machine Learning, Data
Science, and Generative AI solutions. The ideal candidate should possess strong
expertise in designing and implementing Agentic AI systems, multi-agent
architectures, LLM orchestration frameworks, RAG pipelines, and AI-driven
automation solutions.
This role
requires a mix of Data Science, AI Engineering, MLOps, Cloud Engineering,
and Software Development skills to develop next-generation autonomous AI
platforms that deliver measurable business outcomes.
Key
Responsibilities
Agentic
AI & Generative AI
- Design and develop Agentic AI solutions using autonomous and
multi-agent frameworks.
- Build AI agents capable of reasoning, planning, tool usage, memory
management, and workflow orchestration.
- Implement multi-agent systems for enterprise workflows, analytics,
customer service, and decision intelligence.
- Develop AI copilots, virtual assistants, and autonomous business
agents.
- Design AI orchestration architectures using:
- LangGraph
- LangChain
- AutoGen
- CrewAI
- OpenAI Agent Framework
- Microsoft Copilot Studio
Large
Language Models (LLMs)
- Fine-tune and optimize LLMs for enterprise use cases.
- Implement prompt engineering, prompt tuning, and evaluation
frameworks.
- Develop RAG (Retrieval Augmented Generation) architectures.
- Build semantic search and knowledge retrieval solutions.
- Integrate vector databases such as:
- Azure AI Search
- Milvus
Data
Science & Machine Learning
- Develop predictive and prescriptive analytics models.
- Build recommendation systems and forecasting solutions.
- Apply advanced statistical analysis and machine learning
techniques.
- Design feature engineering pipelines and model optimization
strategies.
- Build and deploy models using:
- Scikit-Learn
- XGBoost
- TensorFlow
- PyTorch
- Hugging Face
AI
Engineering Responsibilities
- Develop scalable AI services and APIs.
- Build enterprise-grade AI microservices.
- Create reusable AI accelerators and frameworks.
- Design AI governance and observability frameworks.
- Implement AI monitoring and model performance tracking.
- Develop AI safety, guardrails, and responsible AI controls.
Cloud
& Platform Engineering
Azure
(Preferred)
- Azure OpenAI
- Azure AI Search
- Azure Machine Learning
Other
Cloud Platforms
- AWS Bedrock
- Amazon SageMaker
- Google Vertex AI
Software
Development Skills
Strong
hands-on programming expertise in:
- Python (Mandatory)
- SQL
- REST APIs
- GraphQL
Experience
with:
- FastAPI
- Microservices Architecture
- Event-Driven Architecture
Required
Qualifications
Education
- Bachelor's or Master's degree in:
- Computer Science
- Data Science
- Artificial Intelligence
- Machine Learning
- Engineering
- Related Discipline
Experience
- 8+ years in Data Science, Machine Learning, AI Engineering, or
Software Engineering.
- 3+ years of hands-on experience with Generative AI and LLMs.
- 2+ years of hands-on experience implementing Agentic AI solutions.
- Experience delivering enterprise-scale AI platforms.
Required
Technical Skills
Must
Have
✅ Agentic AI Frameworks
✅ Generative AI & LLMs
✅ RAG Architecture
✅ Vector Databases
✅ Python Development
✅ Machine Learning & Data Science
✅ Azure AI Services
✅ MLOps & CI/CD
✅ REST APIs
✅ Cloud Architecture
Good to
Have
✅ Semantic Kernel
✅ Microsoft Fabric
✅ Databricks
✅ Knowledge Graphs
✅ GraphRAG
✅ Multi-Agent Systems
✅ AI Governance Frameworks
✅ Copilot Studio
Preferred
Certifications
- Microsoft Certified: Azure AI Engineer Associate
- Microsoft Certified: Azure Data Scientist Associate
- Databricks Certified Data Engineer
- AWS Machine Learning Specialty
- Generative AI Certifications (Microsoft/OpenAI)
Success
Metrics
- Successful deployment of enterprise AI agents.
- Reduction in manual effort through AI automation.
- Increased model accuracy and business adoption.
- AI platform scalability, performance, and governance compliance.
- Delivery of measurable business value from Agentic AI initiatives.
Target
Titles
- Senior AI Engineer
- Lead AI Engineer
- Staff AI Engineer
- Principal AI Engineer
- Senior Data Scientist (Agentic AI)
- AI Solutions Architect
Your next step
- Have your CV and examples of relevant work ready.
- Check the listed location, eligibility and core experience before starting.
- Ask the employer about the salary range before committing time to the process.
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Source & posting history
Source notes
Source excerptsSelected passages from the saved posting. Check the full description for conditions and exceptions.
- Pay
No pay amount identified in the saved description.
- Location & working pattern
Chennai, India
Working pattern and location restrictions need checking in the full posting.
- Work authorization
No clear work-authorization passage found. Eligibility is unconfirmed.
- Status in our records
- Active
- First seen by us
- Aug 6, 2026
- Recorded sightings
- 44
- Last seen by us
- Oct 1, 2026
These dates show when we found the listing. Check the employer’s website to confirm it is still accepting applications.
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