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Salary
$184k – $260k per year
Location
In office (Dallas)
Seniority
Architect
Visa
green card filings: 60

Confirmed on the employer's own hiring board on Oct 10, 2026. First seen by Alion on Oct 9, 2026. Grant Thornton scores B on the Alion truth index.

Overview
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Grant Thornton is a US audit, tax and advisory firm headquartered in Chicago and the American member of the Grant Thornton global network of independent accounting firms. The firm counts almost 10,000 professionals in audit and assurance, tax and advisory services, with offices in major US cities including New York, Los Angeles, Boston, Dallas and Atlanta, and serves public and private companies across many industries. It hires audit and IT assurance interns, corporate and M&A tax managers and directors, data and analytics managers, integration leads, compensation specialists and technology staff for its GTech group.

Grant Thornton is seeking a Director of Technical Program Management to join the team. Approved office locations can be found below.

We build products, not tickets. The Director of Technical Program Management makes sure that what we decide to build actually reaches users, in the shape we intended and on a timeline people can plan around. The portfolio spans products our own teams depend on to do their work and products our customers buy and use, and both deserve the same standard of engineering execution.

The role sits at the center of the product engineering system. Innovation validates what is worth building, Platform builds durable shared capability once, Delivery assembles it into solutions for each market and audience, and Operations keeps it healthy in production. This Director turns those moving parts into one coherent plan: sequencing the work, surfacing dependencies before they become escalations, and holding a single honest view of what is shipping, when, and what is at risk. Increasingly that work is shaped by AI, both in the products we ship and in how the teams build them, and this role is expected to plan for AI work on its own terms rather than treating it as ordinary software with a different label.

What This Pillar Owns

The Technical Program Management pillar owns cross-team program execution and the engineering operating cadence that carries an idea from validated concept to a product increment in front of users. It covers program planning and sequencing, dependency and risk management across the pillars, the ship cadence and flow health of the squads, and launch readiness for each audience we serve. It does not decide the roadmap, own platform architecture, configure market instances or run production; it makes the teams that do those things move together.

Key Responsibilities

Program Ownership for Product Outcomes

  • Turn roadmap commitments into sequenced, resourced program plans with named owners, real dates and an explicit definition of the user outcome being delivered.
  • Run the programs that span multiple squads and pillars, from validated concept through build to a product increment in front of internal or external users.
  • Map dependencies across Innovation, Platform, Delivery and Operations early enough to be designed around rather than escalated late.
  • Drive scope and sequencing trade-offs with product management and engineering leaders when reality moves, and make the consequences of each option clear.
  • Plan AI-enabled product work with the discovery and evaluation loops it genuinely requires, and hold the line on shipping only when quality has been measured against real user scenarios.

Execution Cadence and Engineering Flow

  • Lead the scrum masters and set a consistent standard for planning, backlog health, estimation and demo cadence across squads, without turning agility into ceremony.
  • Improve how work flows: shorten cycle time, limit work in progress, and reduce the handoffs and wait states that quietly cost more than any individual delay.
  • Instrument delivery with a small set of trusted metrics, and use them to spot systemic problems rather than to grade teams.
  • Clear the impediments that a squad genuinely cannot clear on its own, and fix the recurring ones at their source.
  • Put AI to work inside the delivery function itself, using it for planning support, status synthesis, risk detection and reporting, so the team spends its time on judgment rather than on assembling slides.

Ship Readiness for Internal and External Users

  • Own ship readiness for each product increment: what is in it, who it affects, how it is enabled, and what happens if it needs to be pulled back.
  • Coordinate the non-engineering half of a launch, working with product management, design, support and market teams on enablement, documentation and communications so users are not surprised by their own product.
  • Tune the bar to the audience: an internal tool can iterate in the open, while an externally used product carries commitments to customers that shape sequencing and timing.
  • Partner with Delivery and Operations on the first weeks after launch, then close out heightened support once the product is genuinely stable.

Technical Judgment and Risk

  • Engage with the architecture and the trade-offs directly: this role is expected to understand why a design choice creates a schedule risk, not merely to record that engineering said so.
  • Keep a live view of program risk with quantified impact on outcome, scope or date, and bring options to leadership rather than status.
  • Protect engineering focus by keeping reporting light, decisions fast and meetings few, and by absorbing coordination overhead so squads do not have to.
  • Program-manage AI work honestly: build and evaluation cycles that are inherently iterative, quality that is measured statistically rather than passed or failed, dependencies on models, data and evaluation sets, and cost and latency characteristics that shift after launch.

Key Relationships

This role works most closely with product management, who set the outcomes it plans around; with the Director of Product Engineering in the Delivery vertical, whose teams build and roll out what is planned; with Platform engineering leadership, whose shared capability determines what is possible and when; and with Operations leadership, who inherit every product the moment it goes live. Beyond the org, it partners with design, support, and the internal business teams and customer-facing functions who represent the two audiences we build for.

Team Leadership

Build and lead a distributed team of technical program managers and scrum masters: hire, coach, set expectations and develop the next generation of program leaders. Establish the minimum viable standards and templates the function needs to scale as the portfolio grows, and be the person leadership asks for a straight answer on how a program is really going.

Qualifications

Required

  • Twelve or more years in product engineering, with at least five leading technical program management or engineering delivery teams in a product organization.
  • A record of shipping software products that real users adopted, ideally including both internal-facing tools and externally used products.
  • Genuine technical depth: comfortable in architecture and design discussions, able to challenge an estimate or a dependency on the substance rather than the process.
  • Experience running large cross-functional programs spanning several engineering teams, product management and design.
  • Fluency in modern agile practice and flow metrics, used to improve delivery rather than to report activity.
  • Experience managing and developing program managers or scrum masters across distributed locations and time zones.
  • Working fluency with AI tooling in the delivery workflow, and judgment about where it helps and where it produces confident noise.
  • Experience program-managing AI or machine learning work, where quality is measured statistically, iteration is expected and a fixed-scope plan is the wrong instrument.

Preferred

  • Experience with a platform-plus-solutions model, where shared capability is built once and deployed to many audiences, tenants or markets.
  • Working knowledge of continuous delivery, feature flags, experimentation and progressive rollout as everyday product engineering tools.
  • Exposure to product analytics and adoption measurement, and comfort using them to judge whether a launch actually worked.
  • Familiarity with how AI products are evaluated in practice, including evaluation sets, quality baselines, and the cost and latency trade-offs that shape what can be shipped.

The base salary range for this position is between $184,000 and $260,000. Placement within the pay range is at Grant Thornton’s discretion, and it is based on multiple factors, including but not limited to, job-related knowledge/skills, experience, business needs, progression within the role, geographic location, and internal equity. At Grant Thornton, compensation decisions are dependent upon the facts and circumstances of each position and candidate.

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