Remote AI Engagement Lead/Solution Architect
Boston, Suffolk County, Massachusetts, 02298, USA
Listed on 2026-08-04
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IT/Tech
Systems Engineer, IT Project Manager, AI Engineer (Applied/Software), Cloud Computing: Infrastructure & Operations
Based in Palo Alto, California, Turing is the world's first AI-powered tech services company. It has reimagined tech services from the ground up with AI by offering AI-vetted and matched talent, AI-accelerated development, and access to AI transformation experts who have built many of the most iconic Silicon Valley companies.
Founded in 2018, the company has experienced tremendous growth with over two million global developers on its Talent Cloud and 900+ clients. Turing's leadership team comprises AI technologists from leading organizations including Meta, Google, Microsoft, Apple, Amazon, Stanford, Caltech, and MIT, as well as tech consulting veterans from Accenture, Cognizant, Capgemini, McKinsey, and Bain.
About the role:Turing is looking for an AI Engagement Lead / Solution Architect to lead a GenAI engagement end-to-end for a Fortune 500 financial-services client — from POC through full-scale implementation. You will act as the single point of accountability for both the architecture and the delivery: you own the solution design and the key technical decisions, and you lead the client relationship and program to a successful, governed release.
You will direct a team of Turing specialists (AI/ML engineers, integration and automation engineers) and partner with the client's own architects, business analysts, and valuation SMEs.
This is an accountable architect-lead role. You are expected to make and own the right design decisions, set the guardrails, and govern delivery — leaning on your specialist engineers to build the deep components.
Required skills:- 10+ years of professional experience, with 4+ years driving Machine Learning / AI projects and solution design.
- Accountable ownership of solution architecture — able to set the target architecture, make and defend key design decisions, and be answerable for them to the client.
- Good working understanding of modern GenAI agentic designs and frameworks (e.g., Lang Chain / Lang Graph) and of AI integration patterns, including MCP (Model Context Protocol)-style tool and data integration.
- Ability to define security boundaries and model/tool controls — what an AI system is allowed to access and do, guardrails against incorrect or unverifiable outputs, and human-in-the-loop checkpoints.
- Experience establishing delivery governance and release gates — clear quality, security, and compliance criteria that each release must pass before go-live.
- Understanding of Cloud services (Azure, GCP, or AWS) and Agile delivery with tools like JIRA and Confluence.
- Excellent communication and stakeholder management to collaborate with senior client SMEs; an entrepreneurial, founder's mindset to own delivery end-to-end.
- Good to have: exposure to financial-services / asset-management valuation workflows or other regulated enterprise domains.
- Architecture & Technical Accountability:
- Own the solution architecture and the key design decisions across the platform and remain accountable for them with the client.
- Guide integration design, including MCP integration patterns and how the AI system connects to the client's data and tools.
- Learn the client's workflow well enough to translate business needs into a sound, practical technical approach.
- Define security boundaries and model/tool controls — access limits, guardrails, and human-review checkpoints that keep sensitive outputs correct and controlled.
- Provide technical direction to the engineering team on solutioning and system design; align them to a technical roadmap and ensure timely execution.
- Establish and enforce release gates — the quality, security, and compliance signoffs required before each release.
- Own overall delivery so scope, quality, and timelines are consistently met; manage the big-picture program timeline (releases, phases, go-live plans) using engineering velocity/capacity inputs from the EM.
- Ensure delivery decisions reflect cost, ROI, and long-term business impact.
- Identify delivery risks, create proactive mitigation plans, and track program health across all milestones.
- Ensure robust business-facing documentation — requirements/BRDs/PRDs, implementation plans, and roadmaps.
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