Sr Data Architect
Company: Bank of America
Location: Charlotte
Posted on: April 2, 2026
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Job Description:
Job Description: At Bank of America, we are guided by a common
purpose to help make financial lives better through the power of
every connection. We do this by driving Responsible Growth and
delivering for our clients, teammates, communities and shareholders
every day. Being a Great Place to Work is core to how we drive
Responsible Growth. This includes our commitment to being an
inclusive workplace, attracting and developing exceptional talent,
supporting our teammates’ physical, emotional, and financial
wellness, recognizing and rewarding performance, and how we make an
impact in the communities we serve. Bank of America is committed to
an in-office culture with specific requirements for office-based
attendance and which allows for an appropriate level of flexibility
for our teammates and businesses based on role-specific
considerations. At Bank of America, you can build a successful
career with opportunities to learn, grow, and make an impact. Join
us! Job Description: This job is responsible for the execution of
data architectural solutions for complex initiatives that span
multiple Lines of Business and control functions. Key
responsibilities include facilitating solution driven discussions,
working with stakeholders to support adherence to the enterprise
data management policy and standards, and supporting architecture
design reviews to ensure integration of data architecture
principles in technology solutions. Job expectations include
educating data management teams on enterprise data architectural
principles and data management processes and routines. We are
seeking an experienced Sr. Data Architect with deep expertise in AI
Controls, Responsible AI, & enterprise data governance to architect
secure, compliant, and trustworthy AI ecosystems. This senior role
is responsible for designing technical guardrails, assessing AI
control capabilities across platforms and tools, and ensuring the
safe adoption of AI technologies enterprise?wide. The ideal
candidate combines advanced data/AI architecture experience with an
expert understanding of AI risks, model governance, & the technical
control frameworks required in regulated environments.
Responsibilities: Partners with various technology teams to
establish data solutions and architecture for large, complex
initiatives that align with the enterprise data architecture
strategy and strategic technology and platform decisions Develops
clear and concise responses to questions from senior management and
control partners regarding the enterprise data architecture
strategy Manages multiple priorities in a matrixed environment with
attention to detail and accuracy Communicates effectively to
influence agreement between partners and escalates items, as
needed, to ensure execution activities remain on track Ensures all
relevant risk, financial, and compliance policies and standards are
met Manages relationships with business and technology partners and
creates an inclusive and healthy working environment to resolve
organizational impediments and blockers Educates data management
teams on enterprise data architectural principles, processes, and
routines AI Controls Architecture & Governance Design & maintain
the architectural framework for AI/ML controls, ensuring alignment
with enterprise risk & compliance requirements. Establish
standardized control patterns for data protection, access
management, content filtering, prompt governance, and safeguard
monitoring. Evaluate & implement tools for explainability,
interpretability, red?teaming, bias detection, drift monitoring,
and auditability. Partner with Risk, Compliance, Model Risk
Management, and InfoSec to harmonize AI architectural controls with
enterprise governance frameworks. Assessment of AI Control
Capabilities Conduct formal assessments of AI platforms, tools, and
frameworks to determine their control maturity, gaps, and alignment
with enterprise standards. Evaluate vendor AI capabilities (e.g.,
model APIs, LLM platforms, vector databases, AI orchestration
tools) against security, privacy, and operational control
requirements. Lead control readiness evaluations for new AI
solutions, including RAG pipelines, agents, LLM components, and
MLOps/LLMOps platforms. Develop structured assessment criteria for
AI guardrails such as: Data governance controls Model monitoring &
explainability tooling Hallucination mitigation Prompt/response
filtering Access and identity management Logging, auditability, &
model lineage Provide recommendations, risk mitigation strategies,
and architectural guidance based on assessment outcomes.
Responsible AI, Model Controls & Lifecycle Governance Embed
Responsible AI principles (explainability, fairness, transparency,
robustness) into all AI architectural designs. Architect the full
model lifecycle with built-in controls, including documentation,
validation, approvals, testing, monitoring, and retirement. Develop
controlled environments for training and deploying models,
including versioning, lineage, reproducibility, isolation, and
audit trails. Implement continuous monitoring frameworks for
compliance, drift, bias, hallucinations, and performance
degradation. Leadership & Influence Serve as the enterprise expert
for AI controls, helping shape policy, standards, and long-term
architecture strategy. Influence and guide senior leaders,
engineers, and data scientists toward controlled, compliant AI
adoption. Required Qualification: 10 years in data architecture,
ML/AI engineering, or enterprise architecture roles. Demonstrated
experience assessing AI control capabilities , including evaluating
vendors, platforms, and internal systems. Deep expertise in AI/ML
governance, risk management, and Responsible AI frameworks. Strong
knowledge of enterprise data architecture, governance, lineage,
metadata, and privacy controls. Hands?on experience with modern
data platforms (Databricks, Snowflake, Azure Data Lake, Synapse,
etc.). Proficiency with AI infrastructure (vector databases, LLM
orchestration platforms, embeddings pipelines). Strong programming
and data engineering skills (Python, SQL, Spark). Experience
architecting secure cloud-native solutions (Azure preferred).
Desired Qualifications: Experience in regulated industries
(financial services, healthcare, insurance). Prior involvement with
model risk governance or AI ethics programs. Certifications in
cloud architecture, data engineering, or AI governance. Experience
designing RAG architectures, LLMOps workflows, and GenAI guardrail
frameworks. Core Competencies AI controls design and assessment
Enterprise data and AI architecture Risk-based decision making and
technology governance Clear communication with executives,
auditors, and technical teams Leadership and ability to influence
cross-functional groups Success Measures Enterprise-wide adoption
of consistent and effective AI controls Measurable reduction in
AI-related risks Strengthened auditability, transparency, and
compliance of AI systems Delivery of scalable, secure, and
responsible AI architectures Strong partnership with Risk,
Compliance, Legal, InfoSec, and Engineering teams Skills:
Architecture Business Analytics Critical Thinking Data Management
Data Visualization Consulting Data Modeling Process Design
Regulatory Compliance Risk Management Cloud Solutions Collaboration
Data Governance Talent Development Technical Strategy Development
Shift: 1st shift (United States of America) Hours Per Week: 40
Keywords: Bank of America, Greensboro , Sr Data Architect, IT / Software / Systems , Charlotte, North Carolina