vbm-256c-2048gb-8-mi300x-gpu is a Bare Metal NVMe (256 vCPUs, 2048.0 GiB RAM, 28608 GB NVMe, 8xMI300X 192 GiB VRAM) server offered by Vultr with 256 vCPUs, 2048 GiB of memory and 28.6 TB of storage.
Bare Metal NVMe (256 vCPUs, 2048.0 GiB RAM, 28608 GB NVMe, 8xMI300X 192 GiB VRAM)
Family
Bare Metal NVMe
Hw Virt
-
Status
active
Observed At
2026-07-10T08:36:47.698994
Availability
REGION / ID
SPOT
ONDEMAND
Processor
vCPUs
256
CPU Allocation
Dedicated
CPU Cores
128
CPU Speed
2.45 GHz
CPU Architecture
x86_64
CPU Manufacturer
AMD
CPU Family
EPYC
CPU Model
9534
System Resources and Accelerators
MEMORY
Memory Amount
2 TB
GPU
GPU Count
8
GPU Memory Min
192 GiB
GPU Memory Total
2 TB
GPU Manufacturer
AMD
GPU Family
CDNA3
GPU Model
MI300X
GPUs
STORAGE
Storage Size
28608 GB
Storage Type
nvme ssd
Storages
NETWORK
Inbound Traffic
0 GB/month
Outbound Traffic
15360 GB/month
IPv4
1
Server Description
A high-density bare metal accelerator platform featuring eight AMD MI300X GPUs and massive NVMe storage for enterprise artificial intelligence workloads.
GPU AcceleratedMemory OptimizedStorage & Database
Vultr vbm-256c-2048gb-8-mi300x-gpu is a high-density bare metal server designed for massive parallel computing and artificial intelligence workloads. It features 256 dedicated vCPUs powered by AMD EPYC 9534 processors running at 2.45 GHz, paired with 2048.0 GB of system memory. The primary hardware highlight is the integration of eight AMD CDNA3 MI300X GPUs, providing a total of 1536 GB of VRAM to handle large-scale model training and inference. Additionally, the server is equipped with 28608 GB of local NVMe SSD storage, ensuring rapid data retrieval for massive datasets. This configuration is optimized for enterprise-grade machine learning, deep learning, and complex scientific simulations where virtualization overhead must be avoided.
Economics
Average Price per Region
Prices per Zone
Lowest Prices
Workload Profiles
Precomputed compound score for Cache Intensive workloads. A weighted average (geometric mean) of benchmark scores compared to their medians: score = ∏ (x_i / m_i)^(w_i / Σw). The score of 1.0 represents a synthetic baseline server with the median performance of each component benchmark; 0.5 means roughly half the performance; and 2.0 means twice the performance of that reference profile. Component weights: 50% Redis RPS (pipeline=1, SET), 20% Redis RPS (pipeline=16, SET), 10% PassMark Memory Mark (composite), 10% Memory bandwidth (read, 16 MB ~ L3), 10% PassMark single-thread CPU. Rationale for component selection: In-memory key-value store workload, mixing direct Redis performance metrics with memory speed and latency benchmarks, and single-core CPU performance profiles.
Precomputed compound score for CI/CD Build workloads. A weighted average (geometric mean) of benchmark scores compared to their medians: score = ∏ (x_i / m_i)^(w_i / Σw). The score of 1.0 represents a synthetic baseline server with the median performance of each component benchmark; 0.5 means roughly half the performance; and 2.0 means twice the performance of that reference profile. Component weights: 50% Geekbench Clang compilation (multi-core), 10% Geekbench Clang compilation (single-core), 20% stress-ng div16 best-N cores, 5% PassMark integer math, 5% PassMark compression, 5% Brotli compression (multi-core, level 0), 5% PassMark string sorting. Rationale for component selection: Build performance is mainly driven by multi-core compilation throughput, but also bundles single-core compilation speed and general CPU performance, multi-core compression and text/scripting processing.
Precomputed compound score for Compute Heavy Applications workloads. A weighted average (geometric mean) of benchmark scores compared to their medians: score = ∏ (x_i / m_i)^(w_i / Σw). The score of 1.0 represents a synthetic baseline server with the median performance of each component benchmark; 0.5 means roughly half the performance; and 2.0 means twice the performance of that reference profile. Component weights: 15% stress-ng div16 best-N cores, 10% stress-ng div16 single core, 20% PassMark CPU Mark (composite), 10% Memory bandwidth (read, 64 MB), 15% PassMark floating point, 15% PassMark AVX/SSE/FMA (SIMD), 10% PassMark integer math, 5% PassMark physics simulation. Rationale for component selection: Number-crunching workload augmenting raw CPU performance stressing, general CPU performance benchmarks, memory bandwidth, and pure math computation speed like floating point, integer, SIMD (AVX/SSE/FMA) operations.
Precomputed compound score for Data Analysis workloads. A weighted average (geometric mean) of benchmark scores compared to their medians: score = ∏ (x_i / m_i)^(w_i / Σw). The score of 1.0 represents a synthetic baseline server with the median performance of each component benchmark; 0.5 means roughly half the performance; and 2.0 means twice the performance of that reference profile. Component weights: 70% PassMark CPU Mark (composite), 10% Gzip compression (single-core, level 5), 10% Memory bandwidth (read, 64 MB), 10% PassMark Memory Mark (composite). Rationale for component selection: Data analysis and ETL workloads are memory-bandwidth-bound and CPU-throughput-driven. The profile combines general CPU performance and memory bandwidth/latency as the primary drivers, supplemented by single-core compression speed as a proxy for serialisation-heavy ETL tasks.
Precomputed compound score for LLM Inference workloads. A weighted average (geometric mean) of benchmark scores compared to their medians: score = ∏ (x_i / m_i)^(w_i / Σw). The score of 1.0 represents a synthetic baseline server with the median performance of each component benchmark; 0.5 means roughly half the performance; and 2.0 means twice the performance of that reference profile. Component weights: 15% LLM text generation (SmolLM-135M, 128 tok), 15% LLM prompt processing (SmolLM-135M, 512 tok), 15% LLM text generation (Llama 7B, 128 tok), 15% LLM prompt processing (Llama 7B, 512 tok), 15% LLM text generation (Llama-3.3 70B, 128 tok), 15% LLM prompt processing (Llama-3.3 70B, 512 tok), 5% Memory bandwidth (read, 256 MB), 2% PassMark AVX/SSE/FMA (SIMD), 2% PassMark floating point. Rationale for component selection: VRAM and memory-bandwidth-bound LLM inference workload, using direct LLM speed benchmarks at three model sizes, and supplementing with raw memory bandwidth and SIMD performance benchmarks.
Precomputed compound score for Web Server workloads. A weighted average (geometric mean) of benchmark scores compared to their medians: score = ∏ (x_i / m_i)^(w_i / Σw). The score of 1.0 represents a synthetic baseline server with the median performance of each component benchmark; 0.5 means roughly half the performance; and 2.0 means twice the performance of that reference profile. Component weights: 30% Static web RPS (1 KiB, 8 conn/vCPU), 20% Static web RPS (64 KiB, 8 conn/vCPU), 20% Static web throughput (256 KiB, 8 conn/vCPU), 20% OpenSSL AES-256-CBC (16 kB blocks), 5% Gzip compression (multi-core, level 5), 5% PassMark string sorting. Rationale for component selection: Primary workloads drivers are single-process static HTTP serving speed and throughput, text processing, TLS termination, and asset compression.
vbm-256c-2048gb-8-mi300x-gpu is a Bare Metal NVMe (256 vCPUs, 2048.0 GiB RAM, 28608 GB NVMe, 8xMI300X 192 GiB VRAM) server offered by Vultr with 256 vCPUs, 2048 GiB of memory and 28.6 TB of storage.
The vbm-256c-2048gb-8-mi300x-gpu server is equipped with 256 logical CPU cores on 128 AMD EPYC 9534 physical CPU cores running at max. 2.45 Ghz, 2048 GiB of memory, 28.6 TB of nvme ssd storage, and 8 AMD CDNA3 MI300X GPUs. Additional block storage can be attached as needed.
The vbm-256c-2048gb-8-mi300x-gpu server is offered by Vultr, founded in 2014, headquartered in Florida, United States. For more information, visit the Vultr homepage.
A high-density bare metal accelerator platform featuring eight AMD MI300X GPUs and massive NVMe storage for enterprise artificial intelligence workloads.