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Prudent Technologies and Consulting, Inc. · Hyderabad, Telangana, India

Director – Data Science & Data Engineering(AI)

seniorfull timePosted 3 days ago
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data-sciencedata-engineeringartificial-intelligencegenerative-ainlpllmragagentic-aiai-safetydata-governanceawsazuregcpmlopsstatisticsmachine-learningdeep-learningdata-warehousingdatabrickshadoop

Position Summary

We are seeking an accomplished and visionary Director – Data Science, Data Engineering, AI Solutions & Pre-Sales to lead our AI and Data practice, drive strategic growth, and deliver transformative solutions for global clients. This role combines executive leadership, solution architecture, business development, pre-sales consulting, and delivery oversight across Data Engineering, Data Science, Artificial Intelligence, Generative AI, Analytics, and Cloud platforms.

The ideal candidate will have a strong blend of technical depth, consulting expertise, client-facing leadership, and business acumen, with a proven ability to build high-performing teams, win strategic opportunities, and deliver measurable business outcomes through data-driven innovation.

Location: Hyderabad,India

Key Responsibilities

Strategic Leadership & Practice Growth

- Define and execute the organization's Data, Analytics, AI, and Generative AI strategy aligned with business objectives.

- Build and scale a high-performing Data & AI practice, including Data Engineering, Data Science, AI/ML, GenAI, and Solution Architecture capabilities.

- Develop go-to-market strategies, solution offerings, accelerators, and industry-specific frameworks.

- Drive revenue growth, profitability, and market expansion for the Data & AI portfolio.

- Establish thought leadership through industry events, executive forums, whitepapers, and client engagements.

AI, Data Science & Analytics Leadership

- Lead the design, development, and deployment of advanced AI/ML, Generative AI, predictive analytics, NLP, recommendation engines, and intelligent automation solutions.

- Define AI adoption roadmaps and enterprise AI strategies for clients.

- Drive innovation using Large Language Models (LLMs), RAG architectures, Agentic AI, and AI governance frameworks.

- Ensure implementation of Responsible AI, model governance, and enterprise AI best practices.

- Oversee AI solution delivery from ideation through production deployment and value realization.

Data Engineering & Cloud Transformation

- Lead enterprise-scale data modernization and cloud transformation initiatives.

- Architect and implement scalable data platforms, data lakes, lakehouses, data warehouses, and real-time streaming solutions.

- Define enterprise data governance, security, metadata management, and data quality strategies.

- Drive adoption of modern cloud ecosystems and data platforms across AWS, Azure, and GCP.

- Establish DataOps and MLOps practices to improve operational efficiency and scalability.

Solution Architecture & Consulting

- Serve as executive sponsor and chief solution architect for strategic customer engagements.

- Design end-to-end business and technology solutions that address complex customer challenges.

- Lead architecture reviews, solution blueprints, transformation roadmaps, and implementation strategies.

- Provide guidance on enterprise architecture, cloud modernization, AI adoption, and digital transformation programs.

- Ensure solution scalability, performance, security, and compliance.

Pre-Sales & Business Development

- Partner with sales leadership to identify, qualify, and close strategic opportunities.

- Lead client discovery workshops, executive presentations, capability demonstrations, and solution discussions.

- Own RFP, RFI, RFQ responses, solution estimation, pricing strategies, and proposal development.

- Develop compelling value propositions, business cases, and ROI frameworks for clients.

- Build and maintain trusted relationships with C-level executives, business leaders, and technology stakeholders.

- Support strategic account growth and large transformation pursuits.

Leadership & Talent Development

- Build, mentor, and retain high-performing teams of Data Scientists, Data Engineers, AI Specialists, Architects, and Consultants.

- Establish a culture of innovation, collaboration, accountability, and continuous learning.

- Drive workforce planning, capability development, succession planning, and leadership grooming.

- Foster strong collaboration across delivery, sales, product, engineering, and business teams.

Required Qualifications

Education

- Bachelor's degree in Computer Science, Information Technology, Data Science, Artificial Intelligence, Engineering, Mathematics, Statistics, or a related discipline.

- Master's degree (MBA, M.Tech, MS, MCA, or equivalent) in Computer Science, Artificial Intelligence, Data Science, Analytics, Engineering, Business Administration, or a related field is strongly preferred.

- Ph.D. in Artificial Intelligence, Machine Learning, Data Science, Computer Science, Statistics, or a related discipline is highly desirable.

Professional Experience

- 18+ years of overall experience in Data Engineering, Data Science, Analytics, Artificial Intelligence, Cloud Technologies, or Digital Transformation.

- 8+ years of experience leading large-scale Data & AI practices, consulting organizations, or technology teams.

- Proven success in delivering enterprise-scale AI, analytics, and data transformation programs.

- Demonstrated experience managing P&L, practice growth, business development, and strategic client relationships.

- Strong experience supporting pre-sales, solution consulting, proposal development, and large deal pursuits.

Technical Expertise

- Machine Learning, Deep Learning, Predictive Analytics, and Statistical Modeling.

- Generative AI, Large Language Models (LLMs), RAG, Agentic AI, NLP, and AI Governance.

- Data Engineering, Data Warehousing, Data Lakes, Lakehouse Architectures, and Real-Time Data Platforms.

- Cloud Platforms: AWS, Microsoft Azure, and Google Cloud Platform (GCP).

- Big Data Technologies: Spark, Databricks, Hadoop Ecosystem, Kafka, and Distributed Computing.

- MLOps, DataOps, CI/CD, Model Monitoring, and AI Lifecycle Management.

- Enterprise Architecture, Solution Design, and Cloud-Native Application Architectures.

Leadership Competencies

- Strong executive presence with exceptional communication and presentation skills.

- Ability to influence senior stakeholders and C-level executives.

- Strategic thinking with strong business and commercial acumen.

- Proven people leadership, mentoring, and organizational development experience.

- Ability to lead global, cross-functional, and geographically distributed teams.

Preferred Certifications

- AWS Certified Solutions Architect – Professional

- Microsoft Certified: Azure Solutions Architect Expert

- Google Professional Cloud Architect

- Databricks Certified Data Engineer or Data Architect

- AI/ML Certifications from AWS, Azure, GCP, or equivalent

- TOGAF, SAFe, PMP, or Enterprise Architecture Certifications

Key Success Metrics

- Revenue growth and profitability of the Data & AI practice.

- Successful acquisition and closure of strategic opportunities.

- Client satisfaction, retention, and business expansion.

- Delivery of scalable AI and Data solutions with measurable business impact.

- Team growth, leadership development, and employee retention.

- Innovation, thought leadership, and market differentiation.

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