Lambda

Technical Account Manager

Lambda$130K — $155K *
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years in technical account management, solutions engineering, or similar roles with customer-facing responsibilities
  • Proficiency with GPU infrastructure, including provisioning and debugging
  • Strong understanding of AI/ML workloads and their technical requirements
  • Experience leading structured technical engagements such as POCs or architecture designs
  • Skilled in scripting, SQL, and data visualization for operational insights
  • Exceptional communication skills for conveying technical information to varied audiences
  • Ability to navigate ambiguity and create methodologies where they don’t exist

Responsibilities

  • Own the technical health of assigned accounts post-sales
  • Map customer AI use cases to drive value across Lambda's platform
  • Lead joint customer POC sessions, defining clear success criteria
  • Design and maintain technical architecture for customer projects
  • Manage SLA expectations and validate downtime events
  • Develop measurable tools for tracking customer account health
  • Direct technical escalations during high-severity incidents
  • Act as the technical voice for customers, managing feature requests
  • Stay informed on the cloud technology market landscape

Benefits

  • Hybrid work model with in-office presence required four days a week
  • Opportunity to work with AI-native startups and Fortune 500 companies
  • Hands-on technical role with direct customer engagement
  • Possibility to shape customer experiences and technical outcomes
  • Involvement in innovative projects at the forefront of technology
Full Job Description
*Note: This position requires presence in our San Francisco, San Jose, or Bellevue office location 4 days per week; Lambda's designated work from home day is currently Tuesday.

The Technical Account Manager owns the technical health of the post-sales relationship for Lambda's public cloud accounts, spanning AI-native startups, Enterprises, and Fortune 500 companies. Where the Customer Success Manager owns the commercial health of an account, you own its technical health: the customer's workloads run well, the architecture is right, the SLA story is defensible, and technical risk is found and retired before it threatens revenue. Solutions Engineering carries the account through pre-sales and hypercare; at handoff, you take ownership of the technical relationship for the life of the contract.

This is a hands-on role, not a coordination role. You will understand what customers are actually building (training runs, fine-tuning pipelines, inference services) deeply enough to lead joint POC sessions, design and defend architectures, validate SLA events at the root-cause level, and build the tooling that makes account health measurable. You will be the customer's most credible technical advocate inside Lambda and Lambda's most trusted technical voice inside the account.

What You'll Do
  • Own the technical health of your accounts. Take the technical handoff from Solutions Engineering at the end of hypercare and own the account's technical outcomes through steady state, expansion, and renewal. Know the state of every cluster and workload you are accountable for, and keep your commercial counterparts ahead of technical risk.
  • Understand customer AI use cases end to end. Map what it means for each customer to train, fine-tune, and serve models on Lambda: frameworks, schedulers, parallelism strategy, data paths, and performance baselines. Build the customer user journey and convert it into value-add opportunities across the platform, documentation, and escalation routing.
  • Lead joint customer POC sessions. Define success criteria with the customer before a node is provisioned: acceptance thresholds, benchmarks, timelines. Own the execution plan, coordinate capacity and provisioning, run or oversee the tests, and drive the POC to a clear verdict: win the workload, close the gap through product, or qualify out.
  • Lead customer architecture designs. Produce and defend reference architectures spanning compute, networking, storage, connectivity, and scheduler integration (Slurm, Kubernetes). Make support boundaries explicit: what is managed and what is not. Own the design as it evolves after handoff, pulling in engineering domain experts with specific, well-framed questions.
  • Own SLA and reliability engineering. Build and own the canonical methodology for uptime, downtime, and credit calculation. Validate breach events at the technical level, down to the specific Ethernet or InfiniBand failure, and arm CSMs and leadership with defensible numbers. Partner with product to standardize SLA language and structure across 1CC, on-demand, and reserved offerings.
  • Build the tooling that makes accounts measurable. Own the technical data surfaces for customer health end to end: dashboards, telemetry and uptime history views, health scoring, and churn early-warning signals. Scope, build, and drive adoption. Replace "escalate to engineering to answer a basic question" with self-serve data for the whole GTM org.
  • Direct technical escalations and incidents. Serve as the technical lead during high-severity events on your accounts: drive root cause, hold the quality bar on RCAs, coordinate engineering, support, and vendors (NVIDIA, storage, networking), and give account teams a technically accurate narrative. Run proactive maintenance and known-issue communication so customers hear about problems from Lambda first.
  • Drive the technical voice of the customer. Run a structured feature-request pipeline into product with committed triage timelines. Audit the platform hands-on by provisioning as a customer and testing known friction points. Lead product-led POCs (for example, NVIDIA NIM) that open new value for customers.
  • Know the market technology landscape. Track GPU roadmaps, competing clouds and neoclouds, and the evolving training and inference stacks. Brief customers on what is coming and internal teams on where Lambda stands, and let that context shape architecture and expansion recommendations.

You
  • 5+ years in technical account management, solutions engineering or architecture, ML engineering, technical program or product management, or infrastructure engineering with significant customer-facing scope, in cloud, HPC, or AI infrastructure.
  • Hands-on fluency with GPU infrastructure: able to provision, benchmark, and debug across compute, networking (InfiniBand, Ethernet), storage, and schedulers (Slurm, Kubernetes), and to read results critically.
  • Working command of AI/ML workloads (training, fine-tuning, inference) sufficient to map a customer's stack, identify constraints, and lead technical conversations with their ML and infrastructure engineers.
  • Track record leading structured technical engagements: POCs with defined success criteria, architecture designs, benchmark programs, or high-severity escalations.
  • A builder's toolkit: scripting, SQL, and dashboarding, with a history of turning operational data into tools other people depend on.
  • Executive-grade communication of deeply technical content, in writing and in the room.
  • Comfort with ambiguity and a track record of building methodology where none exists.

Nice to Have
  • Experience at an AI cloud, neocloud, or hyperscaler serving large-scale GPU or HPC customers.
  • Applied LLM experience (fine-tuning, RAG systems, or inference serving) that mirrors the workloads Lambda customers run.
  • Depth in the NVIDIA ecosystem: NIM and NeMo, Base Command / BCM, the CUDA stack, DGX-class systems.
  • Familiarity with SLA structures, service credits, enterprise contract mechanics, and retention metrics (NRR/GRR).
  • Product management or TPM background with experience converting customer evidence into roadmap decisions.

Salary Range Information

The annual salary range for this position has been set based on market data and other factors. However, a salary higher or lower than this range may be appropriate for a candidate whose qualifications differ meaningfully from those listed in the job description.

About Lambda

Lambda is an online education company that offers courses in computer science and software engineering. The company was founded in 2017 by Austen Allred and Ben Nelson. Lambda's courses are designed to be accessible to anyone, regardless of their background or prior experience. The company's mission is to provide high-quality education that leads to well-paying jobs in the tech industry. Lambda has partnerships with a number of companies, including Amazon, Google, and Microsoft, and has helped thousands of students launch careers in tech.
Learn more about Lambda
Size
1,000 employees
Industry
Net Income
-$5 million
Founded
2017
5 Year Trend
+100%
Revenue
$100 million
NASDAQ

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