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Salary
$70k – $201k per year (Estimated)
Location
Remote (Egypt)
Seniority
Middle
Employment
Full-Time
Overview
Company
Impact
Profile match
Mozn is an enterprise artificial intelligence company that specializes in risk management, financial crime prevention, and advanced natural language processing. Headquartered in Riyadh, Saudi Arabia, the firm develops specialized software solutions, including a financial risk and compliance platform called FOCAL as well as OSOS, an Arabic generative AI platform. Its technology enables financial institutions, government entities, and large enterprises to automate compliance workflows, mitigate fraud, and make data-driven decisions in high-stakes environments.

About Mozn

MOZN is a leading Enterprise AI company enabling organizations to make informed decisions in two critical domains: Financial Crime Prevention and Enterprise Knowledge Intelligence.

We’re a diverse, collaborative team of innovators united by a shared purpose: to build AI that delivers tangible business value, builds trust, and empowers people and organizations with augmented intelligence. Our culture is built on the relentless pursuit of excellence and meaningful impact.

If you’re passionate about working alongside exceptional talent on world-class AI, and you want the autonomy and runway to do the best work of your career, join us in shaping the future of intelligent enterprises.

About the role

We are looking for a highly motivated Distributed Systems Engineer III to join our Cloud Platform Engineering team.

This role focuses on building and operating reliable, scalable, and resilient cloud platforms for distributed and data-intensive workloads. You will work across Kubernetes, cloud infrastructure, messaging systems, databases, automation, and platform reliability.

The role requires strong hands-on experience with Kafka, Kubernetes, and at least one relational database such as MySQL or PostgreSQL, along with a solid understanding of distributed-systems fundamentals.

As our platform evolves, you will also contribute to AI and data infrastructure, helping build the underlying platform capabilities required to run data-intensive and AI

What you'll do

Cloud Platform & Distributed Systems

  • Build, operate, and continuously improve production cloud-native platforms running distributed workloads.
  • Work hands-on with Kubernetes, including upgrades, node pools, workload lifecycle, troubleshooting, and platform operations.
  • Deploy and manage workloads using ArgoCD, Helm, GitOps, Terraform, and automation.
  • Design and operate systems with a focus on scalability, availability, resilience, performance, and operational simplicity.
  • Troubleshoot complex issues across Kubernetes, cloud infrastructure, networking, storage, applications, and distributed services.

Kafka & Data Infrastructure

  • Operate and troubleshoot Apache Kafka in production across high-throughput and distributed workloads.
  • Work with topics, partitions, replication, consumer groups, retention, throughput, latency, and failure recovery.
  • Integrate Kafka with databases and applications using technologies such as Kafka Connect, Debezium, or similar CDC/event-streaming platforms.
  • Operate and troubleshoot MySQL and/or PostgreSQL, including replication, high availability, backup, recovery, performance, and migrations.
  • Support data-intensive workloads and analytical platforms such as StarRocks, ClickHouse, Apache Doris, or similar technologies.

Reliability, DR & Multi-Tenant Platforms

  • Design and operate platforms that remain resilient across node, service, zone, and infrastructure failures.
  • Implement and validate backup, recovery, disaster recovery, failover, and business-continuity capabilities.
  • Understand the fundamentals of multi-zone, multi-region, and active-active architectures and apply them where appropriate.
  • Build platforms that support multiple tenants and workloads, with appropriate isolation, scalability, resource management, and reliability.
  • Participate in DR exercises, failure simulations, migrations, and other resilience initiatives.
  • Understand distributed-system trade-offs involving replication, consistency, availability, partitioning, fault tolerance, latency, and throughput.

Automation, Observability & Operations

  • Automate infrastructure and platform lifecycle operations using Terraform, Python, Bash, Go, or similar technologies.
  • Build reliable deployment and GitOps workflows and reduce manual operational effort.
  • Implement effective monitoring, logging, alerting, and observability for distributed workloads.
  • Participate in production incident response, root-cause analysis, and long-term reliability improvements.

AI & Emerging Platform Infrastructure

  • Contribute to the infrastructure needed to support AI, machine-learning, and data-intensive workloads.
  • Help evolve cloud and Kubernetes platforms to support AI workloads, data pipelines, model-serving infrastructure, and associated platform services.
  • Understand the infrastructure requirements around compute, GPUs, networking, storage, data movement, observability, and workload isolation for AI platforms.
  • Work with engineering teams to build reusable platform capabilities that enable AI and data workloads to run reliably at scale.
  • Stay current with emerging infrastructure patterns across AI platforms, distributed data systems, and cloud-native technologies.

Requirements

  • 4-7 years of experience in Platform Engineering, Infrastructure Engineering, Distributed Systems, SRE, Backend Engineering, Data Infrastructure, or a related field.
  • Strong production experience with Apache Kafka - mandatory.
  • Hands-on production experience with Kubernetes - mandatory.
  • Strong experience with at least one of MySQL or PostgreSQL - mandatory.
  • Solid understanding of distributed-systems fundamentals including replication, partitioning, consistency, availability, fault tolerance, scalability, and failure recovery.
  • Experience with ArgoCD/GitOps and infrastructure-as-code such as Terraform.
  • Experience operating workloads on a public cloud such as GCP, OCI, AWS, or Azure.
  • Strong production troubleshooting and incident-resolution skills.
  • Experience with automation or scripting using Python, Bash, Go, Java, or similar languages.
  • Understanding of high-availability, disaster-recovery, and multi-tenant architecture fundamentals.
  • Experience with observability and operational tooling such as Prometheus, Grafana, OpenSearch/ELK, LGTM, or equivalent.
  • Strong understanding of infrastructure and networking fundamentals in cloud-native environments.

Good to Have

  • Experience with Kafka Connect, Debezium, Kafka Streams, or CDC platforms.
  • Experience with distributed analytical databases such as StarRocks, ClickHouse, Apache Doris, or similar.
  • Experience with Flink, Spark, or other distributed data-processing systems.
  • Experience executing large-scale data, database, application, or infrastructure migrations.
  • Experience with active-active, multi-zone, or multi-region systems.
  • Experience operating stateful workloads on Kubernetes.
  • Experience supporting AI/ML infrastructure or GPU-based workloads.
  • Experience with cloud networking, service mesh, ingress, load balancing, or storage platforms.
  • Contributions to Kubernetes, Kafka, distributed-systems, or other open-source infrastructure projects.

Benefits

  • You will be at the forefront of an exciting time for the Middle East, joining a high-growth rocket-ship in an exciting space.
  • You will be given a lot of responsibility and trust. We believe that the best results come when the people responsible for a function are given the freedom to do what they think is best.
  • The fundamentals will be taken care of: competitive compensation, top-tier health insurance, and an enabling culture so that you can focus on what you do best
  • You will enjoy a fun and dynamic workplace working alongside some of the greatest minds in AI.
  • We believe strength lies in difference, embracing all for who they are and empowered to be the best version of themselves.
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