More jobs:
AI Engineer
Job in
Riyadh, Riyadh Region, Saudi Arabia
Listed on 2026-08-23
Listing for:
Latitude
Full Time
position Listed on 2026-08-23
Job specializations:
-
Software Development
DevOps, AI Engineer (Applied/Software)
Job Description & How to Apply Below
AI systems
- Build, fine-tune, and evaluate LLM systems for domain-specific tasks (QLoRA / PEFT on open-weight models such as Llama-3 and Mistral).
- Design reproducible evaluation harnesses and A/B test frameworks with tracked metrics: task success rate, safety rate, and latency distributions (p50/p95).
- Architect multi-agent and RAG systems (Lang Graph, FastAPI, vector databases) from prototype through production.
- Implement safety guardrails — input/output validation, allowlist/denylist policies, and controls that reduce invalid or high-risk model actions.
- Translate business use cases into deployable prototypes with measurable acceptance criteria, and demo them to stakeholders.
- Design and operate cloud infrastructure and MLOps work spaces (Azure, OCI, or GCP) for AI workloads on Kubernetes and containerized runtimes.
- Build CI/CD pipelines and Git Ops-based release promotion (Argo CD) across development, test, and production environments.
- Implement end-to-end observability (Azure Monitor, Application Insights, ELK) with defined detection and response targets.
- Apply network and perimeter security baselines (FW/WAF), automated code quality and SCA scanning (Sonar Qube, Black Duck), and gated pipelines.
- Own disaster recovery design — automated backups, failover, and documented RTO/RPO commitments.
- Lead and mentor a cloud/AI operations team; define monitoring, incident response, and release governance practices with clear uptime and MTTR targets.
- Standardize SDLC practices — branching strategy, PR governance, release management, delivery reporting — to improve lead time and deployment frequency.
- Consolidate engineering tooling and workflows; drive migrations and platform standardization where fragmentation slows delivery.
- Produce handover documentation and runbooks that make systems auditable and operationally transferable.
- Support vendor and licensing negotiations for cloud enterprise agreements.
- Bachelor's degree in Software Engineering, Computer Science, or a related field.
- 6–8+ years in software, Dev Ops, or platform engineering, including at least 2 years in an applied AI or ML engineering capacity.
- Proven delivery of production AI/LLM systems — not only research or notebook-stage work.
- Strong Python; comfortable with Bash and YAML.
- Deep hands-on experience with Kubernetes, Docker/Podman, and Terraform.
- Production experience with at least one major cloud (Azure preferred; OCI or GCP acceptable).
- Demonstrated ownership of CI/CD at scale (Azure Dev Ops, Git Hub Actions) and Git Ops release models.
- Experience leading a team and setting engineering standards across multiple squads.
- Master's degree in Applied AI, Machine Learning, or a related discipline.
- Fine-tuning experience with QLoRA/LoRA on GPU clusters;
PyTorch and Transformers. - Vector database experience (Milvus, Pinecone, or Weaviate) and RAG retrieval design.
- Experience delivering on Saudi government or large-scale national digital platforms, with familiarity in local compliance and standards.
- Arabic and English professional proficiency.
Python, FastAPI, PyTorch, Transformers, Lang Graph, Milvus/Pinecone/Weaviate, Redis, PostgreSQL, Kubernetes, Docker/Podman, Terraform, Argo CD, Azure Dev Ops, Git Hub Actions, Azure ML, Azure Monitor / Application Insights, ELK, Sonar Qube, Black Duck, Fortinet FW/WAF.
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