Senior GenAI Platform Engineer

Acumenz Consulting

Jersey City (NJ)

On-site

USD 180,000 - 240,000

Full time

4 days ago
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Job summary

Acumenz Consulting seeks a senior platform engineering leader to architect and advance BoA's enterprise Generative AI, Data Science, and data platform capabilities. You will drive self-service AI enablement, platform modernization, and reusable services across consumer and financial domains.

You will collaborate with architects, engineers, data scientists, and business stakeholders to deliver scalable, secure AI and data platforms using cloud-native technologies and modern data architectures.

Qualifications

  • Bachelor's or Master's degree in CS, Engineering, Data Science, or related field.
  • 10+ years designing and building enterprise-scale AI, data platforms, and analytics.
  • Proven experience with GenAI platforms, LLM integration, and governance capabilities.
  • Experience with self-service AI platforms across data lifecycle stages.
  • Deep knowledge of modern AI/data architectures, distributed processing, and cloud-native tech.

Responsibilities

  • Provide technical leadership across enterprise GenAI, Data Science, and Data Engineering.
  • Design reusable platform services enabling end-to-end self-service AI workflows.
  • Define enterprise standards, reference architectures, and engineering best practices.
  • Lead agentic AI applications and event-driven architectures with modern open-source tools.
  • Collaborate with stakeholders to prototype solutions and accelerate innovation.
  • Drive platform modernization using cloud-native architectures, Kubernetes, and data frameworks.
  • Ensure security, governance, resiliency, and operational excellence.
  • Establish CI/CD, IaC, automation, and DevSecOps practices.
  • Provide mentorship, architecture reviews, and engineering excellence across teams.
  • Own critical technology decisions and communicate directions to stakeholders.

Skills

Gen AI Tools
Python
Machine Learning
Data Engineering
Hadoop

Education

Bachelor's or Master's degree in Computer Science / Engineering / Data Science

Tools

Kafka
Apache Spark
Flink
Kubernetes

Job description

Primary Skill

Gen AI Tools

Secondary Skill

Python, Machine Learning, Data Engineering

Tertiary Skill

Hadoop

Minimum Years of Experience

12

Note
  • Kindly share LinkedIn IDs of candidates.
  • Client requires passport number of candidates for this role.
  • Candidates with Banking Financial Services background and overall 12+ Years of experience are highly preferred.
Business Justification

This role is a strategic platform engineering lead responsible for designing and scaling enterprise Generative AI, Data Science, Metadata, Data Quality, and Event-Driven platform capabilities within MALTS. The position will drive self-service AI enablement, platform modernization, and reusable enterprise services that accelerate AI adoption across Consumer, Banking, and Wealth businesses. Ideal candidates possess deep expertise in GenAI, platform engineering, data engineering, distributed systems, governance, and enterprise-scale AI platforms.

Workday Position Summary

This is a senior platform engineering role responsible for architecting, building, and advancing Bank of America's enterprise-scale Generative AI leveraging Data Science, Event Platform, Data Quality, Metadata, and Data Platform capabilities. The role will help define the strategy, architecture, and engineering standards for next-generation AI and data platforms that enable self-service, governed, and scalable solutions across Consumer, Banking, Wealth, and Enterprise organizations.

The successful candidate will lead the design and delivery of reusable enterprise platform services that accelerate AI adoption, data-driven decision making, advanced analytics, agentic workflows, and digital transformation initiatives. This individual will work closely with architects, product owners, engineers, data scientists, and business stakeholders to build highly scalable, secure, and resilient platforms leveraging cloud-native technologies, distributed computing, modern data architectures, and Generative AI frameworks.

The ideal candidate combines deep technical expertise with strong leadership skills, a passion for innovation, and the ability to translate complex business needs into enterprise-grade platform capabilities.

Key Responsibilities
  • Provide technical leadership, architectural direction, and platform engineering expertise across enterprise Generative AI, Data Science, Data Engineering, Event Streaming, Metadata, and Data Quality initiatives.
  • Design and develop reusable platform services that enable end-to-end self-service AI and data workflows, including data onboarding, data preparation, experimentation, model development, evaluation, deployment, monitoring, governance, and observability.
  • Define and implement enterprise standards, reference architectures, and engineering best practices for scalable AI and data platforms.
  • Lead the design and delivery of agentic AI applications, intelligent workflows, MCP-enabled services, and event-driven architectures using modern open-source technologies.
  • Partner with business, product, architecture, and engineering teams to gather requirements, evaluate technologies, prototype solutions, and accelerate innovation.
  • Drive platform modernization initiatives leveraging cloud-native architectures, Kubernetes, containers, serverless services, distributed computing, and modern data processing frameworks.
  • Ensure platform solutions meet enterprise requirements for security, governance, resiliency, scalability, availability, compliance, and operational excellence.
  • Establish and enforce CI/CD, Infrastructure-as-Code, automation, and DevSecOps practices to improve developer productivity and platform reliability.
  • Provide technical mentorship, conduct architecture reviews, perform code reviews, and champion engineering excellence across teams.
  • Own critical technology decisions and communicate architectural direction effectively to technical and executive stakeholders.
Required Qualifications
  • Bachelor's or Master's degree in Computer Science, Engineering, Data Science, or related technical discipline.
  • 10+ years of hands-on experience designing and building enterprise-scale AI, Data Science, Data Engineering, Metadata, Data Quality, and Analytics platforms.
  • Proven experience architecting and implementing enterprise Generative AI platforms, including LLM integration, agent frameworks, retrieval systems, prompt orchestration, vector-enabled architectures, and AI governance capabilities.
  • Strong experience building self-service platforms supporting the complete AI/ML lifecycle, including data ingestion, feature engineering, experimentation, model development, deployment, inferencing, monitoring, and observability.
  • Deep understanding of modern AI and data platform architectures, including storage-compute separation, distributed processing, interactive development environments, containerization, and developer productivity tooling.
  • Experience designing and implementing metadata-driven platforms, semantic layers, data lineage, data quality frameworks, knowledge graphs, and enterprise data governance solutions.
  • Hands-on expertise with Python and modern AI/ML ecosystems, including open-source frameworks, libraries, and model-serving technologies.
  • Strong experience designing event-driven and streaming architectures using technologies such as Kafka, Apache Spark, Flink, or equivalent distributed processing frameworks.
  • Experience building and deploying scalable AI and data workloads on Kubernetes, containers, virtualized infrastructure, and cloud-native environments.
  • Practical experience developing enterprise-grade APIs, microservices, and distributed systems supporting high-volume data and AI workloads.
  • Experience implementing CI/CD, automated testing, infrastructure automation, and DevSecOps practices using enterprise toolchains.
  • Strong understanding of platform observability, monitoring, security, governance, reliability, recoverability, and operational excellence.
  • Proven ability to collaborate with cross-functional teams, influence architectural decisions, and communicate complex technical concepts to diverse audiences.
Preferred Qualifications
  • Experience building enterprise-wide GenAI ecosystems including AI gateways, model management, prompt management, vector databases, agent orchestration, and responsible AI capabilities.
  • Experience with Retrieval-Augmented Generation (RAG), agentic architectures, MCP servers, AI workflow orchestration, and enterprise knowledge platforms.
  • Strong knowledge of cloud-native AI and data platforms across public and private cloud environments.
  • Experience with developer platforms, internal AI copilots, self-service data products, and platform product management.
  • Experience establishing enterprise AI governance, compliance, risk controls, and responsible AI practices.
  • Demonstrated success leading large-scale platform transformations and modernizing legacy analytics and data science ecosystems.
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