Location
In office
Seniority
Architect
Confirmed on the employer's own hiring board on Oct 7, 2026. First seen by Alion on Oct 7, 2026.
Overview
Company
Impact
Profile match
HCLTech is a major Indian multinational information technology (IT) services and consulting company headquartered in Noida, Uttar Pradesh. Spun off from the original HCL Group in 1991, it ranks as one of India's largest technology companies alongside firms like TCS, Infosys, and Wipro.
Job Summary
Data Architect - Financial Services
Must-Have and Nice-to-Have Skills
Must-Have Skills
- Enterprise data architecture: Strong experience designing and governing enterprise data architectures for large, complex systems.
- Data modelling: Proven ability to create domain, conceptual, logical, and physical data models.
- Architecture patterns: Strong knowledge of domain-driven design and CQRS implementation.
- Relational databases: Deep expertise in data design and modelling using Oracle and PostgreSQL.
- Data design fundamentals: Strong understanding of normalization, denormalization, OLTP systems, transactional data models, and scalable data structures.
- Distributed data design: Solid understanding of distributed database architecture, scalability, resiliency, performance, and disaster-recovery considerations.
- Architecture analysis: Ability to assess current-state and target-state architectures and recommend modernization or optimization opportunities.
- Integration and governance: Strong knowledge of enterprise integration patterns, data governance principles, and architecture governance.
- Transformation planning: Experience supporting data migration, integration, and transformation planning.
- Stakeholder collaboration: Ability to work with business stakeholders, architects, application teams, development teams, infrastructure teams, and engineering leads.
- Communication and documentation: Excellent written and verbal English, presentation skills, architecture documentation, and the ability to explain complex concepts to technical and non-technical audiences.
- Problem solving and delivery: Strong analytical skills, independent working ability, and a collaborative approach in fast-paced enterprise environments.
- Financial-services domain: Experience in financial services, capital markets, investment banking, trading platforms, risk, regulatory, or comparable transactional environments.
Nice-to-Have Skills
- NoSQL and distributed databases: Hands-on experience with Cassandra and YugabyteDB; familiarity with GCP Spanner or comparable distributed platforms.
- Data modelling tools: Experience with ER/Studio and Hackolade.
- Cloud and hybrid architecture: Familiarity with cloud and hybrid data architectures.
- Financial data knowledge: Strong understanding of financial data domains and complex transactional systems.
- Enterprise transformation: Experience working on large-scale enterprise transformation programmes.
- Governance frameworks: Exposure to formal data-governance and enterprise-architecture frameworks.
- Education: Bachelor’s or Master’s degree in Computer Science, Information Systems, Engineering, or a related discipline.
- Certifications: Financial-industry or architecture certifications.
Key Responsibilities
Data Architect - Financial Services
Must-Have and Nice-to-Have Skills
Must-Have Skills
- Enterprise data architecture: Strong experience designing and governing enterprise data architectures for large, complex systems.
- Data modelling: Proven ability to create domain, conceptual, logical, and physical data models.
- Architecture patterns: Strong knowledge of domain-driven design and CQRS implementation.
- Relational databases: Deep expertise in data design and modelling using Oracle and PostgreSQL.
- Data design fundamentals: Strong understanding of normalization, denormalization, OLTP systems, transactional data models, and scalable data structures.
- Distributed data design: Solid understanding of distributed database architecture, scalability, resiliency, performance, and disaster-recovery considerations.
- Architecture analysis: Ability to assess current-state and target-state architectures and recommend modernization or optimization opportunities.
- Integration and governance: Strong knowledge of enterprise integration patterns, data governance principles, and architecture governance.
- Transformation planning: Experience supporting data migration, integration, and transformation planning.
- Stakeholder collaboration: Ability to work with business stakeholders, architects, application teams, development teams, infrastructure teams, and engineering leads.
- Communication and documentation: Excellent written and verbal English, presentation skills, architecture documentation, and the ability to explain complex concepts to technical and non-technical audiences.
- Problem solving and delivery: Strong analytical skills, independent working ability, and a collaborative approach in fast-paced enterprise environments.
- Financial-services domain: Experience in financial services, capital markets, investment banking, trading platforms, risk, regulatory, or comparable transactional environments.
Nice-to-Have Skills
- NoSQL and distributed databases: Hands-on experience with Cassandra and YugabyteDB; familiarity with GCP Spanner or comparable distributed platforms.
- Data modelling tools: Experience with ER/Studio and Hackolade.
- Cloud and hybrid architecture: Familiarity with cloud and hybrid data architectures.
- Financial data knowledge: Strong understanding of financial data domains and complex transactional systems.
- Enterprise transformation: Experience working on large-scale enterprise transformation programmes.
- Governance frameworks: Exposure to formal data-governance and enterprise-architecture frameworks.
- Education: Bachelor’s or Master’s degree in Computer Science, Information Systems, Engineering, or a related discipline.
- Certifications: Financial-industry or architecture certifications.
Skill Requirements
Data Architect - Financial Services
Must-Have and Nice-to-Have Skills
Must-Have Skills
- Enterprise data architecture: Strong experience designing and governing enterprise data architectures for large, complex systems.
- Data modelling: Proven ability to create domain, conceptual, logical, and physical data models.
- Architecture patterns: Strong knowledge of domain-driven design and CQRS implementation.
- Relational databases: Deep expertise in data design and modelling using Oracle and PostgreSQL.
- Data design fundamentals: Strong understanding of normalization, denormalization, OLTP systems, transactional data models, and scalable data structures.
- Distributed data design: Solid understanding of distributed database architecture, scalability, resiliency, performance, and disaster-recovery considerations.
- Architecture analysis: Ability to assess current-state and target-state architectures and recommend modernization or optimization opportunities.
- Integration and governance: Strong knowledge of enterprise integration patterns, data governance principles, and architecture governance.
- Transformation planning: Experience supporting data migration, integration, and transformation planning.
- Stakeholder collaboration: Ability to work with business stakeholders, architects, application teams, development teams, infrastructure teams, and engineering leads.
- Communication and documentation: Excellent written and verbal English, presentation skills, architecture documentation, and the ability to explain complex concepts to technical and non-technical audiences.
- Problem solving and delivery: Strong analytical skills, independent working ability, and a collaborative approach in fast-paced enterprise environments.
- Financial-services domain: Experience in financial services, capital markets, investment banking, trading platforms, risk, regulatory, or comparable transactional environments.
Nice-to-Have Skills
- NoSQL and distributed databases: Hands-on experience with Cassandra and YugabyteDB; familiarity with GCP Spanner or comparable distributed platforms.
- Data modelling tools: Experience with ER/Studio and Hackolade.
- Cloud and hybrid architecture: Familiarity with cloud and hybrid data architectures.
- Financial data knowledge: Strong understanding of financial data domains and complex transactional systems.
- Enterprise transformation: Experience working on large-scale enterprise transformation programmes.
- Governance frameworks: Exposure to formal data-governance and enterprise-architecture frameworks.
- Education: Bachelor’s or Master’s degree in Computer Science, Information Systems, Engineering, or a related discipline.
- Certifications: Financial-industry or architecture certifications.
Other Requirements
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