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Forward Deployed Engineer Lead

Job in Cherry Hill, Camden County, New Jersey, 08358, USA
Listing for: HCLTech
Full Time position
Listed on 2026-10-08
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Full Stack Developer
Salary/Wage Range or Industry Benchmark: 164000 - 263000 USD Yearly USD 164000.00 263000.00 YEAR
Job Description & How to Apply Below

HCLTech is looking for a highly talented and self- motivated Forward Deployed Engineer Lead
to join it in advancing the technological world through innovation and creativity.

Job Title: Forward Deployed Engineer Lead

Job : 151243

Position Type: Full-time

Location: New York/New Jersey Area

About the role

As a Forward Deployed Engineer, you operate at the front line of delivery; embedded with the client, turning ambiguous business problems into working software, fast. You own the outcome end to end: conceptualize the solution, prototype it, integrate it into the client's real environment, harden it, and lead a small team to ship and sustain it. You are part builder, part consultant, and an engineer who uses AI/GenAI as a force multiplier for delivery and operational efficiency.

You bring HCLTech's AI/GenAI capabilities to life inside the client's world, with Responsible AI and security as non-negotiables.

What you'll do
  • Conceptualize fast: embed with stakeholders, rapidly frame a solution to a business problem, and stand up a working prototype in days, not weeks.
  • Own efficiency as the scorecard: drive measurable delivery efficiency and operational efficiency ; shorter cycle times, less manual effort, lower defect leakage, clear ROI.
  • Engineer with AI leverage: use AI coding assistants / toolset across the SDLC to lift your own and the pod's productivity and quality.
  • Apply agents and automation: work with coding agents, custom agents and reusable skills to automate delivery and operations workflows; build them where the problem warrants it.
  • Get reliable AI output: apply prompt engineering and sound context practices (context engineering, prompt caching, RAG / context-graph patterns) so AI output is accurate, cost-aware and production-grade.
  • Integrate to standards: design standards-based integrations using proven integration patterns that plug into client ecosystems predictably and securely.
  • Make reusability and predictability the default: build assets, templates and patterns the pod and account can re-apply, so outcomes are consistent and repeatable.
  • Prototype and iterate quickly: favor fast, testable prototypes over big up-front design; learn from each loop.
  • Own Dev Ops and Dev Sec Ops : CI/CD, shift-left security, infrastructure-as-code, and automated testing built in from day one.
  • Run a continuous, adaptable feedback loop: use telemetry, quality signals, evals and client feedback to iterate both the solution and the AI behind it.
  • Stay ahead of the curve: adopt emerging AI and engineering concepts quickly, and bring field learnings back to the practice.
  • Lead and mentor: set technical direction for a lean team of 3 or 4, raise the engineering bar, and grow the pod's overall capability and AI fluency.
What you’ll bring (must-have)
  • Strong software engineering fundamentals - design, clean code, version control, testing, sound architecture; with hands-on full-stack delivery.
  • Proven experience with standards-based integrations, integration patterns, Dev Ops/Dev Sec Ops  and test automation.
  • Conceptual fluency in AI/GenAI and a working habit of using AI coding assistants for productivity; understands what agents, prompting, RAG and context graphs are and where they add value.
  • Ability to conceptualize solutions to business problems quickly and operate effectively in ambiguous, customer-embedded settings.
  • Client-facing maturity: translates fluidly between technical and non-technical stakeholders, and owns outcomes.
  • Experience mentoring or leading small teams.
What great looks like (strongly preferred)
  • Hands-on experience building custom agents and reusable skills, not just consuming AI tools.
  • Practical command of prompt engineering, context engineering, prompt caching and RAG / context-graph design, including cost and…
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