Glance
SDE III - Data Engineering
Bangalore
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- Seniority
- Senior
- Country
- IN
- Work mode
- On-site / unstated
- First seen by hirly
- 11 Sept 2026
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Glance
Glance is an intelligent shopping agent, redefining the commerce experience. Powered by proprietary agentic intelligence and generative AI, Glance delivers a hyper-personalized consumer experience across mobile and TV — shaping the new era of shopping. Glance is operated by Glance InMobi Pte. Ltd., a non-consolidated subsidiary of global technology leader InMobi, and is backed by Mithril Capital, Google and Jio Platforms. To learn more, visit glance.com.
InMobi
InMobi Group is a global technology company shaping the future of agentic commerce and advertising. Through its ecosystem of businesses — including InMobi Advertising and flagship consumer platform Glance — InMobi leverages data, machine learning, and generative AI to help brands reach audiences more precisely and consumers discover products more intuitively. Glance, which is pioneering new models of agentic commerce, is owned and operated by Glance InMobi Pte. Ltd., a non-consolidated subsidiary of InMobi Pte. Ltd.
InMobi Advertising
InMobi Advertising, part of global technology company InMobi, is an agentic advertising platform helping brands and merchants achieve their business outcomes. Through its proprietary intelligence, AI-led solutions, and vast consumer reach — including flagship consumer platform Glance — InMobi Advertising delivers the omnichannel performance defining what's next in advertising and commerce. Glance is owned and operated by Glance InMobi Pte. Ltd., a non-consolidated subsidiary of InMobi Pte. Ltd. To learn more, visit advertising.inmobi.com.
SDE-3 – Data Engineering and Capabilities Team
About the Team
At Glance, we are building a first-of-its-kind generative AI-powered commerce platform that transforms how users discover and shop across mobile surfaces, TV, and brand stores.
The Data Engineering & Capabilities Team is responsible for building the intelligence backbone that powers personalization, recommendations, multimodal search, experimentation, analytics, and AI-driven commerce experiences. We bring together data from affiliate feeds, OEM integrations, commerce catalogs, user interactions, and transaction systems to create trusted, scalable, and ML-ready data products.
As an SDE-3 Data Engineer, you will play a key role in building and scaling the foundational data systems that power Glance's next generation of AI products.
Role Overview
We are looking for a highly skilled and hands-on Data Engineer to own the design, development, and operation of large-scale data platforms and capabilities.
You will work closely with Applied Scientists, ML Engineers, Product Managers, Analytics teams, and Platform Engineers to build reliable data pipelines, feature stores, identity systems, catalog infrastructure, and self-service capabilities that accelerate experimentation and machine learning development.
You will be expected to independently drive complex technical initiatives from design through production while maintaining high standards of quality, scalability, and operational excellence.
Key Responsibilities
Data Platform Development
Design and build scalable batch and real-time data pipelines using Spark, Flink, Kafka, and Airflow.
Develop data products that support analytics, experimentation, recommendation systems, personalization, and AI applications.
Build and maintain highly reliable ETL/ELT frameworks processing billions of events and catalog updates.
User Data Platform
Develop systems for user identity resolution and cross-surface signal aggregation across Mobile, TV, OEM, and Commerce ecosystems.
Build datasets and services that support user profiling, audience creation, segmentation, and personalization.
Contribute to deterministic and probabilistic identity stitching frameworks.
Commerce Catalog Platform
Build ingestion and enrichment pipelines for affiliate feeds, merchant catalogs, D2C integrations, and product metadata.
Design scalable schemas and taxonomy frameworks for large and evolving commerce catalogs.
Develop catalog quality, deduplication, normalization, and enrichment systems.
Feature Store & ML Enablement
Build reusable feature generation frameworks for ML and recommendation systems.
Create low-latency feature pipelines serving training and online inference workloads.
Partner with Applied Scientists to improve feature discoverability, governance, and reusability.
AI-Powered Engineering Capabilities
Develop internal AI-powered tools, agents, and self-service platforms that improve developer productivity.
Build solutions for:
Pipeline debugging
Data quality triage
SQL generation and optimization
Metadata discovery
Schema change analysis
Cost optimization recommendations
Reliability & Operational Excellence
Own production services and pipelines with strong SLAs.
Build observability into every layer through monitoring, lineage, alerting, reconciliation, and quality checks.
Participate in incident response, root-cause analysis, and operational reviews.
Continuously improve platform reliability, performance, and cost efficiency.
Technical Leadership
Lead architecture and design discussions for critical platform components.
Drive engineering best practices around code quality, testing, documentation, CI/CD, and infrastructure management.
Mentor junior engineers and contribute to raising the technical bar across the organization.
Impact You Will Make
Accelerate AI Innovation - You will enable faster experimentation and model deployment by building trusted, reusable data assets and feature pipelines.
Power Personalized Experiences - Your systems will help create a unified understanding of users across multiple surfaces, enabling highly personalized commerce experiences.
Improve Platform Reliability - You will build observability-first infrastructure that ensures data quality, lineage, and trust across the ecosystem.
Scale Commerce Intelligence - Your work will transform fragmented commerce and engagement signals into a strategic advantage for Glance's AI-powered commerce platform.
Increase Engineering Velocity - Through automation, self-service capabilities, and AI-assisted workflows, you will reduce operational overhead and accelerate development cycles.
Experience & Requirements
Required Qualifications
Experience
6–10 years of experience in Data Engineering, Distributed Systems, or Data Platform development.
Strong experience owning large-scale production systems end-to-end.
Data Engineering Expertise: Strong hands-on experience with:
Apache Spark
Kafka
Flink
Airflow
Distributed Data Processing
Batch and Streaming Architectures
Data Modeling
Strong understanding of dimensional modeling, data warehousing, and large-scale schema design.
Experience managing complex datasets and evolving schemas.
Data Quality & Observability
Experience with:
Data validation frameworks
Lineage systems
Monitoring and alerting
Reconciliation pipelines
CI/CD for data systems
Cloud & Platform Engineering
Experience with:
GCP
Databricks
BigQuery
Infrastructure as Code
Cluster management
Performance tuning and cost optimization
Software Engineering
Strong programming skills in:
Python
Scala or Java
SQL
Strong understanding of:
System design
Distributed systems
Performance optimization
Reliability engineering
Preferred Qualifications
Commerce Domain Experience
Experience working with:
Product catalogs
Affiliate commerce platforms
Merchant feeds
Search and recommendation systems
Identity & Personalization
Experience with:
Identity resolution
Audience platforms
Customer 360 systems
User profiling and segmentation
Feature Stores & ML Platforms
Experience building:
Feature stores
Training data pipelines
Real-time inference data systems
MLOps infrastructure
AI-Assisted Engineering
Exposure
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