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About the role
Role: AI Engineer - Agentic & Generative AI
Experience: 3 to 5 years Education: Graduate - B.Tech/B.E. - Computers, Electronics/Telecommunication; PG - M.Sc. – Computers, M.Tech - Any Specialization, MCA - Computers Location: Pune.
About SPAR Solutions
SPAR Solutions is a software and AI consulting and services firm delivering enterprise-grade solutions across diverse client industries. Our AI practice spans agentic automation, Generative AI product development, RAG-powered knowledge systems, and data-driven analytics — across the full lifecycle from research and prototyping through production deployment.
About the Role
We are looking for a mid-level Software Engineer with a strong engineering foundation and hands-on Generative and Agentic AI experience. Software engineering fundamentals: Clean code , testability, design patterns, and Delivery discipline are the baseline. Agentic and Generative AI is the focus layer you bring on top. You will contribute directly to client engagements: building agentic pipelines, integrating LLMs, and delivering well-engineered solutions alongside a senior-leaning team. In a consulting environment, the ability to ramp quickly on new domains and technologies is as valuable as your core skill set.
Key Responsibilities: Agentic AI Development
Build and integrate Agentic AI workflows: tool use, memory, planning loops, and MCP integrations using frameworks such as LangChain, LangGraph, AutoGen, or CrewAI
Implement RAG pipelines end-to-end: document ingestion, chunking, embedding, vector retrieval, and evaluation
Integrate LLMs via API: prompt engineering, function calling, structured outputs, and context management across providers such as OpenAI, Anthropic, and Gemini
Use AI coding agents (Claude Code, Codex, Copilot, or equivalent) as part of day-to-day development; direct and validate AI-generated output effectively
Software Engineering
Write clean, maintainable, production-quality Python code following SOLID principles and established design patterns
Apply test-driven development practices; write and maintain unit and integration tests as a standard part of delivery
Participate in code reviews, Agile/Scrum ceremonies, and JIRA-driven delivery workflows
Work within Git-based version control; follow established branching, PR, and code review processes
Data & Analytics
Build data pipelines for ingestion, transformation, and analysis using Python, numpy, and pandas
Perform exploratory data analysis; generate charts, graphs, and visual summaries using Matplotlib, Seaborn, Plotly, or equivalent
Contribute to data quality assessment and transformation workflows as part of broader AI solution delivery
Required
3 to 5 years of software engineering experience with strong, demonstrable Python fundamentals
Hands-on experience with at least one agentic AI framework - LangChain, LangGraph, AutoGen, CrewAI, or equivalent
Experience prompting and integrating at least one major LLM - OpenAI, Anthropic Claude, Google Gemini, or similar
Working knowledge of RAG concepts - chunking strategies, embeddings, vector stores, and retrieval evaluation
Familiarity with MCP integrations and agentic workflow patterns
Strong prompt engineering skills - structured, systematic, and iterative approach
Well versed in use of SOLID principles, common design patterns, and clean code practices
Test-driven development and unit testing experience
Proficiency with numpy, pandas, and at least one visualization library (Matplotlib, Seaborn, or Plotly)
Foundational understanding of ML concepts - how models are trained, data preparation, and the purpose of fine-tuning
VS Code or comparable IDE; Git version control
Agile/Scrum experience
Strong written and verbal communication - able to explain technical decisions clearly to non-technical stakeholders
Adaptable and quick to learn - comfortable switching across technology stacks and client domains
Desired:
AI coding tools - Claude Code, OpenAI Codex, GitHub Copilot, or similar
Vector database experience - Pinecone, Weaviate, ChromaDB, Qdrant, or equivalent
NLP fundamentals - tokenization, text classification, similarity, named entity recognition
Applied statistics and EDA experience beyond standard pandas workflows
Conversational AI or chatbot development experience
Cloud platform exposure - AWS, Azure, or GCP
Why SPAR Solutions
Work on real enterprise AI problems across diverse client industries — not internal tooling or incremental maintenance
Grow fast — exposure to agentic AI, RAG, NLP, and data engineering within a single role alongside a senior team
Your contributions ship to real client deployments; ownership is real, not simulated
A team that values clean engineering and intellectual curiosity equally
Compensation competitive with current market standards for this level
Contact Details: Talent Acquisition Team HR Department / SPAR Solutions Address: SPAR Solutions India Pvt. Ltd. Pune IT Park, B-503, Bhau Patil Marg, 34 Aundh Road, Bopodi, Pune, Maharashtra, India. Pin Code: 411020. Website: sparsolutions.com LinkedIn: https://www.linkedin.com/company/spar-solutions-llc Twitter: https://twitter.com/sparsolutions Facebook: https://www.facebook.com/SPARsolutions
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