Generative AI Engineer

eInfochips (An Arrow Company)

Ahmedabad District

On-site

INR 1,500,000 - 2,100,000

Full time

14 hours ago
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Job summary

eInfochips, an Arrow company, is seeking a senior engineer to design, build, and deploy production-grade generative AI and agentic-AI solutions. You will deliver secure, scalable AI systems that operate on structured and unstructured data and enable AI-driven decision-making.

The role requires 4–6 years in software engineering and AI, with 2–3 years specifically in Generative AI/LLMs. You will architect end-to-end pipelines, collaborate with MLOps, and ensure data privacy and safe deployments.

Qualifications

  • 4–6 years of software engineering and AI experience.
  • 2–3 years of direct Generative AI/LLMs experience.

Responsibilities

  • Architect, develop, test and deploy generative-AI solutions for domain-specific use cases.
  • Design and implement agentic AI workflows and orchestration.
  • Integrate enterprise knowledge bases and data sources via vector databases and RAG.
  • Build and productionize ingestion, preprocessing, indexing and retrieval pipelines for data types.
  • Implement fine-tuning, prompt engineering, evaluation metrics and A/B testing.
  • Conduct model red-teaming and vulnerability assessments of LLMs and chat systems.
  • Collaborate with MLOps/platform teams to containerize, monitor, version and scale models (CI/CD, model registry, observability).
  • Ensure model safety, bias mitigation, access controls and data privacy compliance.
  • Translate business requirements into technical designs with performance, cost and safety constraints.

Skills

Python
ML/AI libraries
LLMs
RAG pipelines
Vector databases
Agentic workflows
CI/CD
Observability
Data security
Cloud GenAI
Content filtering
Model evaluation

Tools

Garak
LangChain
LangGraph
Crew AI

Job description

Role summary:
  • Senior-level engineer (4–6 years of professional experience) focused on designing, building, and deploying production-grade generative AI and agentic-AI solutions.
  • Responsible for delivering secure, scalable, and business-oriented AI systems that operate on structured and unstructured data and enable AI-driven decision-making
Required experience
  • 4 –6 years of industry experience in software engineering and AI-related roles.
  • Minimum 2-3 years of direct experience with Generative AI and Large Language Models (LLMs).
Key Responsibilities:
  • Architect, develop, test, and deploy generative-AI solutions (online/offline LLMs, SLMs, TLMs) for domain-specific use cases.
  • Design and implement agentic AI workflows and orchestration using frameworks such as LangGraph, Crew AI, or equivalent.
  • Integrate enterprise knowledge bases and external data sources via vector databases and Retrieval-Augmented Generation (RAG).
  • Build and productionize ingestion, preprocessing, indexing, and retrieval pipelines for structured and unstructured data (text, tables, documents, images).
  • Implement fine-tuning, prompt engineering, evaluation metrics, A/B testing, and iterative model improvement cycles.
  • Conduct/model red-teaming and vulnerability assessments of LLMs and chat systems using tools like Garak (Generative AI Red-teaming & Assessment Kit).
  • Collaborate with MLOps/platform teams to containerize, monitor, version, and scale models (CI/CD, model registry, observability).
  • Ensure model safety, bias mitigation, access controls, and data privacy compliance in deployed solutions.
  • Translate business requirements into technical designs with clear performance, cost, and safety constraints.
Required Skills and Experience:
  • Strong proficiency in Python and experience with ML/AI libraries (scikit-learn, TensorFlow, PyTorch, Hugging Face ecosystem).
  • Hands-on experience with LLMs, RAG, vector databases, and retrieval pipelines.
  • Practical experience deploying agentic workflows and building multi-step, tool-enabled agents.
  • Experience using Garak (or similar LLM red-teaming/vulnerability scanners) to identify model weaknesses and harden deployments.
  • Demonstrated experience implementing content filtering / moderation systems.
  • Solid skills working with structured and unstructured data and advanced feature engineering.
  • Familiarity with cloud GenAI platforms and services (Azure AI Services preferred; AWS/GCP acceptable).
  • Strong understanding of model evaluation, performance profiling, inference cost optimization, and observability.
  • Good knowledge of security, data governance, and privacy best practices for AI systems.
Preferred / differentiating qualifications
  • Hands-on fine-tuning experience and parameter-efficient tuning methods.
  • Experience with multimodal models and retrieval-augmented multimodal pipelines.
  • Prior work on agentic safety, tool-use constraints, LLM application firewalls, or human-in-the-loop systems.
  • Familiarity with LangChain, LangGraph, Crew AI, or similar orchestration libraries.
Values & behaviours
  • AI-first thinking: consistently seeks AI-enabled solutions to business problems.
  • Data-driven mindset: makes decisions based on measurable insights and metrics.
  • Collaboration & agility: effective contributor in cross-functional, fast-paced teams.
  • Problem-solving orientation: looks beyond the obvious to unlock product and business value.
  • Business impact focus: designs solutions with measurable outcomes and real adoption.
  • Continuous learning: stays current with academic research, open-source tooling, and best practices.
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