Manager - Data Engineering (Bengaluru)

Manager - Data Engineering (Bengaluru)

07 Sep
|
LATENTVIEW ANALYTICS
|
Bengaluru

07 Sep

LATENTVIEW ANALYTICS

Bengaluru

Designation: Manager - Data Engineering

Experience: 10 to 14 Years

Location: Bengaluru, Karnataka , India (BLR)

Job Description:

We need a senior data engineering resource who is super deep into building the infrastructure layer, has expertise in the Databricks stack and thinks AI first in terms building out the infrastructure - We are looking for this person as a Senior leader for the customer enablement stack who can support and help us get to the next level while building a truly AI centric stack for us.

Responsibilities:

1. AI-Centric Infrastructure Design

Architecting the Lakehouse: Lead the design and implementation of a robust Medallion Architecture (Bronze/Silver/Gold) specifically optimized for downstream machine learning and LLM consumption.

Vector Database Integration: Architect the seamless integration of Databricks Vector Search and managed vector databases to support RAG-based applications.

Model-Ready Pipelines: Build "feature-first" data pipelines where data is versioned, lineage-tracked, and ready for training without manual preprocessing.

2. Databricks Stack Mastery

Unity Catalog Governance: Implement enterprise-wide data governance, security, and discovery using Unity Catalog to ensure AI models access data ethically and securely.

Delta Live Tables (DLT): Deploy and manage complex, streaming data pipelines using DLT to reduce operational overhead and increase data reliability.

Compute Optimization:



Manage and optimize Serverless SQL warehouses and automated cluster scaling to balance high performance with cost-efficiency.

3. Customer Enablement & Scalability

Internal Productization: Treat the data stack as a product, building self-service tooling that allows internal "customers" (DS/ML teams) to spin up environments and access clean data instantly.

Performance Engineering: Debug and resolve deep-seated architectural bottlenecks in Spark jobs to ensure sub-second latency for customer-facing AI features.

Technical Evangelism: Act as the bridge between core engineering and customer-facing teams, translating complex infrastructure capabilities into business value.

4. AI Operations (DataOps & MLOps)

CI/CD for Data: Establish rigorous CI/CD practices for infrastructure-as-code (Terraform/Pulumi) and data pipeline deployments.

Monitoring & Observability: Implement advanced monitoring for data quality (Excellent Expectations/Monte Carlo) and model drift, ensuring the AI stack is "self-healing."

Agentic Framework Support: Design the backend infra to support LangChain or LlamaIndex workflows, ensuring the data retrieval layer is fast enough for agentic reasoning.

Skills:

Databricks Data EngineeringTools

Databricks GenAI implementation

Job Snapshot

Updated Date

06-09-2026

Job ID

J_5132

Location

Bengaluru, Karnataka, India

Experience

10 - 14 Years

Employee Type

Permanent

📌 Manager - Data Engineering (Bengaluru)
🏢 LATENTVIEW ANALYTICS
📍 Bengaluru

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