Infosys
Infosys

Generative AI

RoleMachine Learning
LevelMid Level
LocationBangalore, India
WorkOn-site
TypeAssociate Consultant
Posted4 weeks ago
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About the role

Solution Delivery & Consulting:

  • Partner with client stakeholders to understand business goals, translate them into AI/ML and Generative AI use cases, and define success metrics.

  • Contribute to solution design, effort estimation, and delivery planning for AI initiatives in a consulting environment.

  • Communicate findings, trade-offs, and recommendations through clear documentation and presentations.

Generative AI Development:

  • Build Python-based prototypes and production-ready components for Generative AI workflows (prompting, evaluation, and iteration).

  • Develop and refine prompts, templates, and guardrails to improve response quality, safety, and consistency.

  • Implement evaluation approaches to measure output quality (accuracy, relevance, hallucination checks) and drive continuous improvement.

AI/ML Engineering

  • Develop and maintain ML pipelines in Python for data preparation, training, inference, and monitoring.

  • Perform model experimentation, feature engineering, and performance tuning aligned to business requirements.

  • Collaborate with cross-functional teams to integrate AI services into applications and workflows.

Minimum Qualifications:

  • 3–5 years of professional experience delivering Python-based solutions, including AI/ML or Generative AI components.

  • Hands-on experience with Generative AI concepts and implementation (prompt engineering, evaluation, and iterative improvement).

  • Working knowledge of AI/ML fundamentals (supervised/unsupervised learning, model validation, metrics).

  • Strong Python programming skills with clean coding practices, testing, and debugging.

  • Bachelor’s degree in engineering or computers or AI

Technology->AI/ML, Python, Gen AI, Databricks

Preferred Qualifications:

  • Experience delivering end-to-end AI/ML solutions in a client-facing or consulting setup, including requirement discovery and stakeholder management.

  • Exposure to LLM application patterns such as RAG, embeddings, vector search, and tool/function calling.

  • Familiarity with MLOps practices such as experiment tracking, model versioning, CI/CD for ML, and production monitoring.

  • Experience with scalable data/ML platforms and workflows (e.g., Databricks-style notebook-to-production practices).

  • Proven ability to balance rapid prototyping with production readiness, including performance, security, and reliability considerations.

Good to have skills:

RAG, Embeddings, Vector Databases, Prompt Engineering, MLOps

Education: MCA,MSc,MTech,Bachelor of Engineering,BCA,BSc,BTech

Preferred skills: Technology->AI-AI Engineering->AI/ML Solution Architecture and Design->traditional ai ml,Technology->AI-Generative AI->Prompt Engineering

About Infosys

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