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Telnyx54

Forward Deployed Engineer, Mexico

Mexico City, Mexico

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hirly's read of this role

Seniority
Mid level
Country
MX
Work mode
On-site / unstated
First seen by hirly
20 Sept 2026

Derived automatically from the posting. Upload your resume above to see how the role scores against it.

the posting

About Telnyx

Telnyx is an industry leader that's not just imagining the future of global connectivity—we're building it. From architecting and amplifying the reach of a private, global, multi-cloud IP network , to bringing hyperlocal edge technology right to your fingertips through intuitive APIs, we're shaping a new era of seamless interconnection between people, devices, and applications.

We're driven by a desire to transform and modernize what's antiquated, automate the manual, and solve real-world problems through innovative connectivity solutions. As a testament to our success, we're proud to stand as a financially stable and profitable company. Our robust profitability allows us not only to invest in pioneering technologies but also to foster an environment of continuous learning and growth for our team.

Our collective vision is a world where borderless connectivity fuels limitless innovation. By joining us, you can be part of laying the foundations for this interconnected future. We're currently seeking passionate individuals who are excited about the opportunity to contribute to an industry-shaping company while growing their own skills and careers.

The Role

We're building a local Enterprise Sales Pod in Mexico City — one AE and one Forward Deployed Engineer (FDE), working together to build a Telnyx enterprise business in your market. You'll embed directly with enterprise customers to architect and ship production systems on Telnyx's global network — voice, messaging, AI, and wireless. This isn't about demoing products. It's about building real solutions that work at scale.

You'll work side-by-side with a dedicated Enterprise AE — not a demo resource, but a commercial partner who owns the named-account list, builds executive relationships, and closes the deal. You own the technical side: discovery, architecture, POC, and production go-live. You win together. No throw-over-the-wall.

The Pod Model

Enterprise AE — owns the named-account list, builds executive relationships, gets in the room, owns commercial qualification and close, expands the account.

Forward Deployed Engineer — owns technical discovery, designs the architecture, builds the POC when gated, gets the first workload live, removes blockers and finds the next workload.

We sell the workload, not the SKU. Customers buy a production outcome — an AI contact center, a SOC/NOC agent, global communications, connected mobility, or enterprise inference — that runs on Telnyx primitives (voice, messaging, numbers, wireless, Voice AI, inference, agents, connectivity). You lead with the outcome conversation, not a product menu.

What You'll Do

Embed with enterprise customers to understand their communications workflows, AI use cases, and integration challenges firsthand

Build and deploy custom implementations: AI Voice Assistants, Telnyx APIs (Voice, Messaging, Fax, Wireless), WebRTC

Run open-weight LLMs in customer environments — consume GLM, Kimi, DeepSeek, Qwen, and MiniMax through Telnyx Inference (OpenAI-compatible API; there's no model infrastructure for you to run), or deploy self-hosted stacks (Llama, Mistral, and region-specific models like AGRITE, or other Spanish-language sovereign models) behind your own serving engine when air-gapped or sovereign-cloud requirements demand it

Deploy and operate LiteLLM as the model gateway in customer environments: a unified OpenAI-compatible interface across self-hosted open-weight models and hosted providers, with routing, load balancing, retries and fallbacks, rate limits, and per-team virtual keys

Instrument and govern LLM usage through the gateway — cost tracking and budgets, caching, logging and observability (OpenTelemetry, Langfuse, or similar), and guardrails — so customers can see and control what their AI workloads are doing

Wire production observability for everything you ship — metrics, logs, traces, dashboards, and alerting (e.g. Prometheus + Grafana for metrics, OpenTelemetry for traces, Graylog or ELK for logs — or the customer's existing stack) — so you and the customer's ops team both know what "healthy" looks like and what pages whom when it isn't

Design model routing strategies for real-time voice workloads, balancing latency, cost, and quality, with sane fallback behavior when a provider degrades

Make the build-vs-buy case between self-hosted open-weight models and hosted frontier APIs, and keep the customer's application code portable across both

Adapt models to customer domains: prompt and RAG pipelines and evaluation harnesses for Spanish and English language use cases and Mexico/LATAM-specific regulatory environments (LFPDPPP, data localization, INAI compliance)

Lead POCs, pilots, and production launches from whiteboard to go-live

Own customer outcomes — stay engaged until the solution is live and stable

Collaborate directly with Product and Engineering to shape the roadmap based on field insights from Mexico and the broader LATAM region

Create clear technical documentation, runbooks, and maintainable solutions for handoff

Troubleshoot and resolve complex integration issues alongside customer teams

What We're Looking For

CS degree or equivalent experience

3+ years building and shipping production software — you've written code that real users depended on, you've been on-call for it, and you've debugged it when things broke. (A consulting background counts if this is also true of you.)

Proficiency in multiple languages: Python, Node.js/TypeScript, Go — you're more dangerous in some than others. (Telnyx Edge Compute — functions and stateful actors — is TypeScript, so that one pulls double duty.)

Practical understanding of what breaks in front of a model in production: provider rate limits and quotas, timeout and retry behavior, streaming, token accounting and cost attribution, and the failure modes that only show up under concurrency

Comfortable deploying containerized services on Kubernetes, with secrets management, config, and upgrades as part of the deployment story

You've wired observability and been paged because of it — Prometheus + Grafana, OpenTelemetry, Graylog, ELK, or equivalent. You know what to monitor, what to alert on, and what "healthy" looks like

High-concurrency experience — Kafka, message queues, or event streams at real scale. When throughput spikes you know what breaks — consumer lag, backpressure, hot partitions, rebalance stalls — and what absorbs it: partitioning, consumer groups, parallelism up to your partition count

You've built APIs from scratch, not just consumed them — OpenAPI spec, REST/GraphQL design, auth, rate limiting, versioning, idempotency

Event-driven thinking and cloud-native instincts

Exposure to SIP, WebRTC, or real-time voice/messaging systems

Self-sufficient by default — there's no engineering team behind you. You read the code and the docs, ask the customer (not your manager), and make sound engineering judgment calls on your own

Customer-facing engineering experience — you can run discovery with a customer's engineers and present to their executives in the same week

Ability to translate "it's not working" into root cause

Comfortable working on customer sites and in high-stakes technical conversations

Excellent written and verbal communication in English and Spanish. You can run whiteboard sessions, live troubleshooting, and escalations with customer engineering teams.

Based in Mexico City, or willing to relocate — this is a hybrid role with travel across Mexico and the broader LATAM region

Legally authorized to work in Mexico, or eligible for sponsorship

Bonus Points For

Experience with AI voice assistants, STT/TTS, or LLM-based conversational systems

Building eval sets for a specific domain

Hands-on production experience with an LLM gateway — LiteLLM, Portkey, Kong AI Gateway, or an in-house OpenAI-compatible proxy — including config-driven model definitions, ro

Original posting on Telnyx54's site ↗

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