7h ago
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Solution Architect – AI, Automation & Finance Transformation

United StatesUnited States·Springmid
OtherSolution Architect
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Overview

Solution Architect – AI, Automation & Finance Transformation This role has been designed as ‘’Onsite’ with an expectation that you will primarily work from an HPE office.

Technical Tools
OtherSolution Architect
Solution Architect – AI, Automation & Finance Transformation

  

This role has been designed as ‘’Onsite’ with an expectation that you will primarily work from an HPE office.

Hewlett Packard Enterprise is the global edge-to-cloud company advancing the way people live and work. We help companies connect, protect, analyze, and act on their data and applications wherever they live, from edge to cloud, so they can turn insights into outcomes at the speed required to thrive in today’s complex world. Our culture thrives on finding new and better ways to accelerate what’s next. We know varied backgrounds are valued and succeed here. We have the flexibility to manage our work and personal needs. We make bold moves, together, and are a force for good. If you are looking to stretch and grow your career our culture will embrace you. Open up opportunities with HPE.

   


We are looking for a Solution Architect to own the end-to-end architecture of enterprise AI, automation and analytics solutions across the Finance Transformation portfolio. This is a design-and-decide role with real accountability: the architect sets the target-state architecture, chooses the platforms and patterns, secures approvals from enterprise technology, security and data governance, and then stays close enough to delivery to guarantee that what ships matches what was designed.


The role sits between business intent and technical execution. It translates finance and operations problems — forecasting, reporting, reconciliation, transfer pricing, deal support, backlog analytics — into solution designs that are scalable, secure, governable and supportable, and it holds the line on architecture standards when delivery pressure argues otherwise.

It is an advanced role, but not a detached one. The architect is expected to write code when a pattern needs proving, run the proof of concept personally, and lead engineers and vendor teams through the build rather than handing over a deck and stepping away.

Architecture Ownership

  • Own the target-state architecture for AI, GenAI, agentic AI and automation solutions across the Finance Transformation portfolio, and maintain the roadmap that moves the estate towards it.
  • Produce solution architecture artefacts to enterprise standard: context and component diagrams, integration and data-flow designs, sequence flows, non-functional requirements, and documented architecture decision records with the options considered and the rationale for the choice.
  • Make and defend build-versus-buy, platform-selection and pattern decisions, stating explicitly the trade-offs in cost, delivery time, supportability and risk.
  • Define reusable reference architectures, solution patterns and shared components so that each new use case starts from an established baseline rather than a blank page.
  • Own non-functional design across performance, scalability, availability, cost, observability and supportability, and set the acceptance thresholds each solution must meet before production.
  • Run design reviews and technical governance forums, and take solutions through enterprise architecture review, security review and data governance approval.
  • Maintain a current view of the solution landscape — what exists, what it depends on, what is being retired — and prevent duplicate or divergent builds across teams.

AI and Agentic Solution Design

  • Architect LLM and agentic solutions end to end: orchestration and agent topology, tool and function calling, retrieval and grounding strategy, memory and state, human-in-the-loop checkpoints, and fallback behaviour when the model is wrong.
  • Design retrieval-augmented generation over enterprise content, including chunking and embedding strategy, index design, source-of-truth selection, freshness and permission-trimmed retrieval.
  • Define the evaluation and assurance approach for AI solutions: golden datasets, accuracy and groundedness measures, regression testing on prompt or model change, and the criteria that decide whether a solution is fit to go live.
  • Design guardrails and responsible-AI controls covering prompt injection, data leakage, hallucination containment, PII handling, auditability of AI-assisted decisions, and the boundary between what the agent decides and what a person approves.
  • Set the model strategy — model selection, routing, versioning, cost and token management, and the approach to upgrades — and revisit it as the platform landscape moves.
  • Determine where machine learning, deterministic automation, or a conventional application is the right answer, and say so plainly when generative AI is not the appropriate tool for the problem.

Data and Platform Architecture

  • Design the data architecture underpinning AI and analytics use cases: source systems, ingestion patterns, curated layers, semantic models, lineage and refresh cadence.
  • Architect solutions on Microsoft Azure, Greenlake and Databricks, selecting the appropriate compute, storage, orchestration and serving components for each workload.
  • Design integration architecture across enterprise platforms such as SAP, Salesforce, Anaplan, ServiceNow and Power BI, covering API, event and batch patterns, error handling, idempotency and reconciliation between systems.
  • Define identity, access and secrets architecture using Okta, Microsoft Entra ID, OAuth, managed identities and role-based access control, and ensure least-privilege design is applied rather than assumed.
  • Set the deployment architecture across environments, including CI/CD approach, promotion path, environment parity, configuration management and rollback strategy.
  • Design for control and audit readiness where solutions touch financial data, including SOX-aligned controls, evidence capture, segregation of duties and traceability from output back to source.

Delivery Leadership

  • Lead engineers, data teams and vendor partners through implementation, reviewing designs and code against the agreed architecture and correcting drift early.
  • Build proofs of concept personally to de-risk unproven patterns, and convert what is learned into a documented pattern the team can reuse.
  • Break large initiatives into deliverable increments with clear technical dependencies, sequencing and defensible estimates.
  • Identify architectural risk, technical debt and single points of failure early, quantify the impact, and put a remediation path in front of decision-makers before it becomes an incident.
  • Support production stabilisation after release, lead root-cause analysis on significant technical failures, and feed the findings back into the architecture.
  • Raise the technical capability of the team through design mentoring, code and design review, internal enablement sessions and written guidance.

Stakeholder and Governance Engagement

  • Work directly with Finance, Operations and Transformation leadership to understand the business problem behind the request, and challenge the requirement where the stated ask will not deliver the intended outcome.
  • Present architecture, options, cost implications and risk positions to senior business and technology stakeholders, adjusting depth to the audience without diluting the substance.
  • Partner with enterprise architecture, security, infrastructure, DataOps and compliance teams to secure approvals and keep solutions aligned to enterprise standards.
  • Manage vendor and partner technical engagement, including solution assessment, scope definition, design review and acceptance of delivered work.
  • Contribute to portfolio-level planning by advising on feasibility, effort, sequencing and platform readiness across competing initiatives.

Requirements

~1 min read

HPE is committed to creating an inclusive and accessible workplace and encourages applications from all qualified individuals, including those with disabilities. If you believe you require accommodation during any stage of the application or interview process, please submit your request by completing our secure form linked here.


Note: This option is reserved for applicants needing assistance/reasonable accommodation related to a disability.

We strive to provide our team members and their loved ones with a comprehensive suite of benefits that supports their physical, financial and emotional wellbeing.

We also invest in your career because the better you are, the better we all are. We have specific programs catered to helping you reach any career goals you have — whether you want to become a knowledge expert in your field or apply your skills to another division.

We are unconditionally inclusive in the way we work and celebrate individual uniqueness. We know varied backgrounds are valued and succeed here. We have the flexibility to manage our work and personal needs. We make bold moves, together, and are a force for good.

Follow @HPECareers on Instagram to see the latest on people, culture and tech at HPE.

Engineering
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"The expected salary/wage range for this position is provided below. Actual offer may vary from this range based upon geographic location, work experience, education/training, and/or skill level.
– United States of America: Annual Salary USD 157,000 - 361,000 in Texas
The listed salary range reflects base salary. Variable incentives may also be offered."

Information about employee benefits offered in the US can be found at https://myhperewards.com/main/new-hire-enrollment.html

HPE is an Equal Employment Opportunity/ Veterans/Disabled/LGBT employer. We do not discriminate on the basis of race, gender, or any other protected category, and all decisions we make are made on the basis of qualifications, merit, and business need. Our goal is to be one global team that is representative of our customers, in an inclusive environment where we can continue to innovate and grow together. Please click here: Equal Employment Opportunity.

   

HPE will comply with all applicable laws related to employer use of arrest and conviction records, including laws requiring employers to consider for employment qualified applicants with criminal histories.

   

We have become aware of an increase in fraudulent recruitment activities in which individuals impersonate our company or authorized recruitment agencies to offer fake employment opportunities. These scams may occur through false websites, emails, social media, or chat-based applications and often aim to obtain personal information or money. Please note that Hewlett Packard Enterprise (HPE), its direct and indirect subsidiaries and affiliated companies, and its authorized recruitment agencies/vendors will never charge a candidate a registration fee, hiring fee, or any other fee in connection with its recruitment and hiring process. We also never request personal information such as back account details, Social Security numbers, or national IDs via social media or chat applications.

All legitimate job opportunities will come through official company channels, and candidates are responsible for verifying the credentials of any third party claiming to represent the company. Any reliance on fraudulent communication is at the individual’s own risk, and HPE disclaims legal liability for any resulting damages. If you suspect recruitment fraud, do not share personal information or make any payments and report the incident to your local authorities immediately.

Location & Eligibility

Where is the job
Spring, United States
On-site at the office
Who can apply
US

Listing Details

Posted
October 9, 2026
First seen
October 9, 2026
Last seen
October 9, 2026

Posting Health

Days active
0
Repost count
0
Trust Level
56%
Scored at
October 9, 2026

Signal breakdown

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Solution Architect – AI, Automation & Finance Transformation