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Salary
≈ $26k – $53k per year (Estimated)
Location
In office (India)
Seniority
Senior · 8+ years exp

First seen by Alion on Sep 16, 2026.

Overview
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We help organizations innovate faster, operate smarter, and secure their digital frontier- leveraging AI, Cloud, IoT, and Cybersecurity to build future-ready.

Job Description :

Role : Senior AI Data Product Owner.

Role Objective :

Own the end-to-end lifecycle of AI data products on AWS and Databricks.

Transform existing dashboards and ad-hoc datasets into governed, reusable, production-grade data products trusted for AI training, evaluation, inference, monitoring, and continuous improvement.

The role guides client Sensors from a dashboard-oriented data culture toward an AI-first operating model where data products are managed as enterprise assets, not one-off project outputs.

Core Responsibilities :

AI Data Product Strategy and Ownership :

- Own the AI data product roadmap; translate business priorities into a sequenced backlog of reusable data products with clear owners, service levels, and lifecycle controls.

- Partner with dashboard, analytics, and AI delivery teams to identify reporting assets that should evolve into governed AI-ready data products.

Data Product Operating Model and Governance :

- Establish product charters defining purpose, consumers, source ownership, data contracts (schema, semantics, freshness, quality expectations, change notification), access models, and retention rules.

- Implement table-, column-, and row-level access standards, classification, audit trails, and handling rules via Databricks Unity Catalog and AWS controls.

AI Data Ingestion, Curation, and Productization :

- Lead design and operation of incremental, observable, cost-aware ingestion and curation pipelines from enterprise sources into AWS and Databricks.

- Create versioned, reproducible training sets, evaluation sets, inference inputs, feature tables, and monitoring datasets with discoverable documentation and metadata.

Data Quality Engineering and AI Readiness Gates :

- Define AI-specific quality dimensions (completeness, consistency, timeliness, uniqueness, referential integrity, distribution stability, drift sensitivity) with automated checks.

- Enforce hard gates that block training, deployment, or production promotion when critical quality checks fail.

Production Operations, Support, and Continuous Improvement :

- Provide runbooks for recovery, backfills, reprocessing, incidents, and escalation.

- Participate in operational reviews and drive root-cause corrective actions.

- Optimize storage, compute, partitioning, scheduling, and cost transparency across the platform.

Decision Rights :

- Approve data readiness gates before model training, evaluation, deployment, or material changes to production inference inputs.

- Escalate data ownership, quality, access, or cost issues that block business outcomes or introduce operational risk.

Key Deliverables :

KPI :

- Expected outcome.

Dashboard-to-data-product transformations :

- 1. >= 2 major transformations per year.

AI data product coverage :

- 1. All critical AI use cases backed by named, governed, reusable data products.

Dataset reproducibility :

- 1. Training, evaluation, and inference datasets are versioned, documented, and quality-gated.

Data quality visibility :

- 1. Issues measured, assigned to owners, and trending downward quarter-over-quarter.

Quality and cost scorecards :

- 1. Transparency on data health, usage, reliability, and platform cost drivers.

Qualifications And Experience :

- Education : Bachelor's or higher in Computer Science, Data Science, AI/ML, Applied Mathematics, Engineering, or related field.

- Experience : 8+ years in data engineering, data management, AI data foundations, or adjacent technology leadership with proven ownership of data products or critical pipelines delivering measurable business impact.

- Technical : Hands-on with AWS, Databricks, Delta Lake, Unity Catalog, data lineage, observability, and production support.

- Experience defining data contracts, quality gates, service levels, and access models.

- Stakeholder management : Track record working across business leaders, product owners, data/AI engineers, security, and platform teams.

- Ability to operate at senior level, challenge incomplete requirements, make trade-offs transparent, and drive decisions when ownership is unclear.

Preferred Certifications :

- Databricks Data Engineer Professional or Databricks Machine Learning Professional.

- AWS Certified Data Analytics, AWS Solutions Architect Associate, or AWS Solutions Architect Professional.

- Relevant data governance, data management, product ownership, or agile delivery certifications are a plus.

Skills

Artificial Intelligence, Product Management, AI Product Management, AWS, Databricks, Product Strategy, Product Roadmap, Data Ingestion, Data Quality, Machine Learning

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