BG
Bosch Group
AI Engineer

AI/ML Engineer_MS

On-siteMidAI Engineerposted 1mo ago
✦Role summaryAI-generated

The role involves designing and deploying end-to-end AI/ML and GenAI solutions, including LLM-based applications and RAG pipelines, on cloud platforms such as Azure, GCP, or AWS. You will build API-driven services with FastAPI or Flask and implement enterprise-grade MLOps pipelines for monitoring and scaling.

Skills required

About this role

Job Description

We are seeking an experienced AI/ML Engineer (4–6 years) with strong hands-on expertise in end-to-end machine learning, GenAI solution development, data engineering, and cloud-native deployment. The role involves building scalable AI systems, designing LLM-based applications, and integrating enterprise-grade MLOps pipelines across any one of Azure, GCP, and AWS environments.

Key Responsibilities

  • Design and implement ML and GenAI solutions including RAG pipelines, LLM integrations, prompt engineering, and evaluation/guardrail frameworks.

  • Develop and deploy API-based AI applications using FastAPI, Flask, or Plotly Dash.

  • Build end-to-end ML pipelines: data ingestion, feature engineering, model training, validation, deployment, and monitoring.

  • Work with cross-functional teams to translate business needs into AI-driven outcomes.

  • Deploy workloads using Azure App Service, Cloud Run, Azure Bot Service, Dialogflow, and other cloud-native platforms.

  • Implement MLOps workflows for CI/CD, model registry, experiment tracking, and automated retraining.

  • Build and optimize ETL/ELT pipelines using Azure Data Factory, BigQuery, Databricks, and other data engineering tools.

  • Create dashboards and analytical insights using Power BI, Tableau, Looker, QuickSight, or ThoughtSpot.

  • Ensure scalable, secure, and cost-optimized deployment across Azure/GCP/AWS environments.

Required Technical Skills

Programming & Languages

  • Python (advanced), SQL (strong), HTML/CSS/JavaScript (working knowledge)

LLMs & GenAI

  • LangChain, LangGraph

  • Google ADK, Vertex AI, AWS Bedrock

  • RAG architectures, embeddings, vector retrieval

  • Prompt design, evaluation metrics, guardrails/security

  • Azure AI Foundry, Azure OpenAI, Azure AI Search, Azure Document Intelligence

  • Custom model development using GPT, LangChain, and relevant frameworks

  • Prompt engineering, LogProbs handling, vector search integrations

Data Engineering & Platforms

  • BigQuery, Azure Synapse, Azure Data Factory, Databricks

  • Blob Storage, Cloud Storage, Document AI

  • Strong understanding of ETL/ELT, feature engineering & data profiling

  • Event-driven architecture and streaming systems for agentic workflows

  • Data ingestion, transformation, and vector database management

  • Ensuring data quality, lineage, governance, and observability

BI & Analytics

  • Power BI, Tableau, Looker, ThoughtSpot, QuickSight

DevOps & MLOps

  • Docker, CI/CD pipelines

  • Model deployment & monitoring

  • Vertex AI Agent Engine, model registry, experiment tracking

Qualifications

Educational qualification:

Bachelor’s/Master’s degree in Computer Science, Engineering, or related field.

Experience :

4–6 Years

✕ position closed

This role is no longer accepting applications. It’s kept here for reference — check out the similar open roles below.

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