Job Description
Key Responsibilities :
Client Engagement & Delivery :
– Lead end-to-end analytics engagements across strategy, design, development, and deployment.
– Partner with client stakeholders to understand business objectives and translate them into analytical, data engineering, or AI problem statements
– Deliver actionable insights through structured analysis and data storytelling.
– Present findings and recommendations to senior leadership.
Analytics & Solutioning :
– Design and develop dashboards, KPIs, analytical frameworks, and decision-support systems.
– Perform advanced analytics including forecasting, segmentation, optimization, causal analysis, and performance modeling.
– Lead AI-driven solutioning including ML model development, LLM-based use cases, GenAI prototypes, and intelligent automation.
– Collaborate on Responsible AI, model governance, and data ethics best practices.
– Drive scalable reporting, automation solutions, and analytical accelerators.
– Ensure data quality, governance, and integrity across the analytics and AI lifecycle.
Data Engineering & Architecture :
– Architect and oversee data pipelines, ETL/ELT workflows, and scalable data integration processes.
– Work with modern data engineering tools (Spark, Databricks, Airflow, dbt, Kafka, etc.) to enable robust data platforms.
– Partner with engineering teams to build cloud-native data ecosystems on AWS, Azure, or GCP.
– Ensure data models, data lakes/warehouses, and semantic layers support analytics and AI workloads.
– Drive performance optimization, reliability, and best practices for data engineering delivery.
Team Leadership :
– Manage and mentor a team of analysts, data engineers, and data scientists.
– Drive project planning, resource allocation, quality assurance, and timely delivery.
– Foster a culture of ownership, innovation, AI adoption, and continuous improvement.
– Provide technical guidance across analytics, data engineering, and AI disciplines.
Stakeholder Management :
– Act as a trusted advisor to client stakeholders.
– Collaborate cross-functionally with technology, product, data engineering, AI/ML, and business teams.
– Manage expectations, delivery risks, and communications effectively.
Practice Development :
– Contribute to proposal development, AI/analytics accelerators, architecture frameworks, and thought leadership.
– Support business development initiatives, GenAI solution roadmaps, and client expansion opportunities.
– Lead capability building in analytics, data engineering, AI/ML, and GenAI.
Required Qualifications :
Experience :
– Minimum 10 years of experience in Analytics, Business Intelligence, Data Engineering, Data Science, or related roles.
– Strong experience delivering client-facing analytics, AI/ML, or data engineering projects within consulting or large enterprise environments.
– Proven track record of translating complex data and AI insights into business impact.
Technical Skills :
– Strong proficiency in SQL for data extraction, transformation, and modeling.
– Experience with visualization tools (Power BI, Tableau, Looker, etc.).
– Proficiency in Python or R for analytics, ML modeling, and automation.
– Good understanding of data warehousing, dimensional modeling, and ETL/ELT processes.
– Hands-on experience in data engineering tools (e.g., PySpark, Airflow, Databricks, dbt, Snowflake).
– Exposure to AI/ML concepts including supervised/unsupervised learning, LLMs, GenAI, and model deployment.
– Exposure to MLOps frameworks, model monitoring, or cloud-native ML services is a plus.
– Experience with cloud platforms (AWS/Azure/GCP) preferred.
Are you interested in this position?
Apply by clicking on the “Apply Now” button below!
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