JobHabor
Location
Bengaluru, Karnataka, India
Workplace
Hybrid
Employment
Full Time
Salary
Apply on the employer’s site

Posted 11d ago

We are seeking an ambitious Data and AI Engineer with 5-8 years of experience to play a pivotal role in modernizing client’s core data infrastructure and scaling advanced AI capabilities. This role bridges legacy big data environment and future cloud platform. You will actively maintain and optimize our existing data pipelines while architecting, developing, and transitioning workflows to an AI-ready cloud ecosystem. Beyond traditional data pipelines, you will play an active role in building and deploying intelligent AI agents and leveraging advanced Large Language Models (LLMs) like Anthropic Claude, utilizing the cutting-edge Databricks AI suite to deliver immediate business value.

ROLES AND RESPONSIBILITIES

Cloud Modernization & Migration

Deconstruct legacy Apache Spark and Hadoop MapReduce workflows to re-architect and rebuild them as optimized, production-ready pipelines within AWS and Databricks.

AI Agent & LLM Development

Design, build, and deploy intelligent AI agents and workflow automation tools leveraging leading Large Language Models (LLMs) such as Anthropic Claude.

AI Data Pipeline Engineering

Build and optimize pipeline architectures explicitly tailored for AI use cases, including unstructured data ingestion, real-time feature tokenization, and metadata tagging for vector databases.

Legacy Infrastructure Maintenance

Monitor, maintain, and troubleshoot existing big data workloads running on our Hadoop cluster to guarantee data availability for business operations during the multi-phase migration, resolving bottlenecks and Out Of-Memory (OOM) errors.

BI Engineering & Support

Act as the primary engineering liaison for downstream business stakeholders utilizing BI tools (e.g. Tableau, Looker, etc.) by performing minor functional enhancements, bug fixes, and data extract optimizations to resolve report dashboard latency.

Cloud Optimization

Utilize Databricks and Delta Lake features (e.g., ACID transactions, Z-Ordering, caching) to significantly improve pipeline performance, reliability, and cost efficiency.

Databricks AI Suite Implementation

Leverage Databricks tools (such as Databricks Vector Search, Mosaic AI, and Lakeflow) to orchestrate, track, and serve productio

AI & Agentic Frameworks

Hands-on experience or deep technical familiarity building functional AI agents, integrating LLM APIs (specifically Anthropic Claude), and utilizing orchestration frameworks (e.g., LangChain, Databricks Mosaic AI Agent Framework or any other tool ).

Distributed Computing

Foundational understanding of distributed storage and computing concepts—specifically partitioning, shuffling, caching, and broadcast joins. Solid hands-on experience with Apache Spark is required.

Programming & SQL

Strong proficiency in Python (PySpark) or Scala, alongside intermediate-to-advanced SQL querying capabilities (window functions, query tuning, and complex joins).

Cloud & Databricks Exposure

Direct experience or deep theoretical knowledge of the AWS ecosystem (S3, IAM) and Databricks environments.

Visualization Layer

Practical experience working with any BI tool (e.g. Tableau, Looker, Power BI, etc.) with the capability to debug calculated fields, modify parameters, and troubleshoot slow-loading reports.

Skills

  • LLM
  • Anthropic Claude
  • Databricks
  • Spark
  • Hadoop
  • AWS
  • Vector Databases
  • Tableau
  • Looker
  • Delta Lake
  • LangChain
  • SQL
  • Python
  • PySpark
  • Scala
  • S3
  • IAM
  • Power BI

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