Parallelepiped is defined by the volumes of its faces
Here is a geometric proof of the result. $\newcommand{\bR}{\mathbb{R}}$ $\newcommand{\be}{\boldsymbol{e}}$ As I comment at the end of the proof, this actually proves a stronger fact.
Define two equivalence relations"$\sim_n$" and "$\approx_n$" on the set of bases of $\bR^n$.
$$ (v_1,\dotsc, v_n)\sim_n (w_1,\dotsc, w_n) $$
$\DeclareMathOperator{\vol}{vol}$ $\newcommand{\eps}{\epsilon}$ if for any subset $I\subset \{1,\dotsc, n\}$ we have $$ \vol(v_i, \;\;i\in I)=\vol(w_i,\;\;i\in I) $$ and $$ (v_1,\dotsc, v_n)\approx_n (w_1, \dotsc, w_n) $$ if there exists orthogonal map $T$ and scalars $\eps_i=\pm 1$ such that
$$ w_i= \eps_iTv_i,\;\;\forall i=1,\dotsc , n. $$ $\newcommand{\Llra}{\Longleftrightarrow}$ The result states that $\sim_n \Llra \approx_n$. Clearly $\approx_n\implies \sim_n$.
Clearly $\sim_1\Llra \approx_1$. We then argue by induction. Assume $\sim_n\Llra \approx_n$. To prove that $\sim_{n+1}\Llra \approx_{n+1}$ it suffices to show that if
$$(v_0, v_1,\dotsc, v_n)\sim _{n+1} (w_0, v_1,\dotsc, v_n), $$
then
$$(v_0, v_1,\dotsc, v_n)\approx_{n+1} (w_0, v_1,\dotsc, v_n). $$
$\DeclareMathOperator{\span}{span}$ $\DeclareMathOperator{\Proj}{Proj}$ For $I\subset \{1,\dotsc, n\}$ we set
$$ V_I:=\span\{v_i;\;\;i\in I\}. $$
and for any vector $u$ we denote by $[u]_I$ its orthogonal projection on $V_I$.
Since $vol(v_0, v_i, i\in I)=\vol(w_0, v_i, I\in I)$, $\forall I\subset \{1,\dotsc, n\}$ we deduce
$$\big\Vert\; v_0-[v_0]_I\;\big\Vert =\Big\Vert\; w_0-[w_0]_I\;\big\Vert. $$ Pythagoras' Theorem implies
$$ \big\Vert\;[v_0]_I\;\big\Vert =\big\Vert\;[w_0]_I\;\big\Vert. \tag{$\ast$} $$
Since $$ \vol(v_0,v_i)=\vol(w_0,v_i),\;\;\forall i=1,\dotsc, n, $$ there exists $\eps=\pm 1$ such that
$$ (v_0,v_i)=\eps(w_0,v_i), $$ where $(-,-)$ denotes the inner product. We set $$ S_i:=\big\{\; \eps=\pm 1;\;\; (v_0,v_i)=\eps(w_0,v_i)\;\big\}. $$
Remark. Above, the two inner products are simultaneously nonzero or simultaneously zero. When they are zero $S_i=\{-1,1\}$. Note that $|S_i|=1$ iff $(v_0,v_i)\neq 0$.
Lemma 1. If $i\neq j$ and $(v_i,v_j)\neq 0$, then $S_i\cap S_j\neq \emptyset$.
Proof. For simplicity assume $i=1, j=2$. If $(v_0,v_1)=(v_0,v_2)=0$ then $(w_0,v_1)=(w_0,v_2)=0$ and the result is obviously true. Suppose that $(v_0,v_1)\neq 0$. Denote by $\be_1,\be_2$ the orthonormal basis of $\span(v_1,v_2)$ obtained from the basis $v_1,v_2$ via Gram-Schmidt. Then
$$ v_1=x\be_1,\;\; v_2=y\be_1+z\be_2 $$ where $x,z>0$ and $y\neq 0$ since $(v_1,v_2)\neq 0$. Write
$$a_1=(v_0,\be_1),\;\;a_2=(v_0,\be_2), $$ $$ b_1=(w_0,\be_1),\;\;b_2=(w_0,\be_2). $$
Then $a_1=\eps_1 b_1=(v_0,v_1)\neq 0$. Since $a_1^2+a_2^2=b_1^2+b_2^2$ we deduce $a_2=\pm b_2$. We want to show that $a_2=\eps_1 b_2$. Let $a_2=\eta_2b_2$, $\eta_2=\pm 1$. We want to prove that $\eps_1\in S_2$. We argue by contradiction. We have
$$ (v_0,v_2)=\eps_2(w_0,v_2),\;\;\eps_2\neq \eps_1, $$ so that, given that $a_1=\eps_1b_2$, we get
$$ a_1y+a_2 z=\eps_2\eps_1a_1 y+\eps_2\eta_2 a_2z $$ Since $\eps_2\neq \eps_1$ we have $\eps_2\eps_1=-1$ and we deduce
$$2 a_1y= (\eps_2\eta_2-1)a_2z\neq 0 $$
so $a_2\neq 0$ and $\eta_2\eps_2=-1$, i.e., $\eta_2=\eps_1 $ and $b_2=\eps_1 a_2$ and $(w_0,v_2)=\eps_1(v_0,v_2)$. $\Box$
We now define a graph $\Gamma$ with vertices $\{1,\dotsc, n\}$ where two distinct vertices $i,j$ are connected by an edge if $(v_i,v_j)\neq 0$. Denote by $\Gamma_1,\dotsc, \Gamma_c$ its connected components. Let $I_\alpha$ denote the set of vertices of $\Gamma_\alpha$. We obtain an orthogonal decomposition
$$ V:=\span(v_1,\dotsc, v_n)=\bigoplus_{\alpha} V_{I_\alpha}. $$
For any vector $u$ we set $$ [u]_\alpha:=[u]_{I_\alpha}. $$
Lemma 2. Suppose that $i,j$ belong to the same component $\Gamma_\alpha$ and $|S_i|=1$. Then $S_i\subset S_j$.
Proof. $\DeclareMathOperator{\dist}{dist}$ We argue by induction on the distance $\dist_{\Gamma_\alpha}(i,j)$. The case $\dist_{\Gamma_\alpha}(i,j)=1$ is covered by Lemma 1.
We assume the result is true whenever $\dist(i,j)<d$ and we prove that it is true when $\dist(i,j)=d$.
For simplicity we assume that $i=1$ and $v_1,v_2,\dotsc, v_{d+1}=v_j$ is a path of length $d$ in $\Gamma_\alpha$ connecting $i$ to $j$.
If there exists $k$, $1<k<d+1$ such that $(v_0,v_k)\neq 0$ then $|S_k|=1$, $\dist(v_i,v_k), \dist(v_k,v_j)<d$ and the induction assumption implies
$$ S_i\subset S_k\subset S_j.$$
Since $v_1,\dotsc, v_{d+1}$ is a minimal path connecting $i$ to $j$ we deduce that for any $1\leq k<\ell \leq d+1$, $\ell-k\geq 2$, the vertices $v_j,v_\ell$ are not adjacent so $(v_k, v_\ell)=0$.
Consider the orthonormal basis $\be_1,\dotsc,\be_{d+1}$ of $\span\{v_1,\dotsc, v_{d+1}\}$ obtained from $v_1,\dotsc, v_{d+1}$ via Gram-Schmidt. Then
$$v_1=c_{01}\be_1,\;\;v_2=c_{12}\be_1+c_{02}\be_2,\;\;v_k=c_{1k}\be_{k-1}+c_{0k}\be_k,\;\;k=2,\dotsc, d+1, $$
$$c_{0k}>0,\;\;c_{1k}\neq 0. $$
We denote by $v_0'$ and $w_0'$ the orthogonal projections of $v_0$ and respectively $w_0$ on $\span\{v_1,\dotsc, v_{d+1}\}$.
Then
$$v_0'=\sum_{k=1}^{d+1} a_k\be_k,\;\; w_0'=\sum_{k=1}^{d+1} b_k\be_k. $$
From ($\ast$) we deduce $a_k=\pm b_k$, $\forall k$. Moreover, $a_1=(v_0,v_1)\neq 0$. For simplicity we assume that $a_1=b_i$, i.e. $S_i=S_1=\{1\}$. We have to prove that $1\in S_{d+1}$ i.e.,
$$(v_0, v_{d+1})= (w_0, v_{d+1}). $$
For $k=2,\dotsc, d$ we have
$$ a_{k-1}c{1k}+a_k c_{0k}=(v_0,v_k)=0=((w_0,v_k)=b_{k-1}c_{1k}+b_kc_{0k} $$
and we deduce that
$$a_k=b_k\neq 0,\;\;\forall k=1,\dotsc, d. $$
If $1\in S_{d+1}$ we are done. If $-1\in S_{d+1}$, then
$$ a_dc_{1,d+1}+a_{d+1} c_{0,d+1}=(v_0,v_{d+1})=-(w_0, v_{d+1})=-a_dc_{1,d+1}-b_{d+1} c_{0,d+1}, $$
so that
$$0\neq 2a_dc_{1, d+1}=-(a_{d+1} +b_{d+1}) c_{0,d+1}. $$
Hence $a_{d+1}+b_{d+1}\neq0$ so $a_{d+1}=b_{d+1}$ and thus
$$(v_0, v_{d+1})=(w_0, v_{d+1}), $$
i.e., $1\in S_{d+1}$. $\Box$
Corollary 3. For any $\alpha=1,\dotsc, c$ there exists $\eps_\alpha=\pm 1$ such that
$$[v_0]_\alpha=\eps_\alpha[w_0]_\alpha. $$
Proof. If $v_0\perp v_i$, $\forall i\in I_\alpha$ the result is obvious since in this case $[v_0]_\alpha=[w_0]_\alpha=0$.
Suppose that $(v_0,v_i)\neq 0$ so that $S_i=\{\eps_i\}$, $\eps_i=\pm 1$. Using Lemma 2 we deduce that $S_i\subset S_j$, $\forall j\in I_\alpha$.
We can take $\eps_\alpha=\eps_i$. $\Box$
Choose a unit vector $\be_0\in\bR^{n+1}$ such that $\be_0\perp V=\span\{v_1,\dotsc, v_n)$. Then we have an orthogonal decomposition
$$ v_0=a_0\be_0+\sum_\alpha[v_0]_\alpha,\;\;w_0=b_0\be_0+\sum_\alpha [w_0]_\alpha. $$
There exists $\eps_0=\pm 1$ such that $a_0=\eps_0b_0$. Define the orthogonal map $T:\bR^{n+1}\to\bR^{n+1}$ $\newcommand{\bone}{\boldsymbol{1}}$
$$T=\eps_0\bone_{\span\be_0}\oplus \bigoplus_\alpha\eps_\alpha\bone_{V_{I_\alpha}}. $$
Then $Tv_0=w_0$ and $Tv_i=\eps_\alpha v_i$ for $i\in V_\alpha$. $\Box$
Remark. The connected components $\Gamma_\alpha$ used in the above proof have a nice geometric interpretation.
For any $I\subset \{1,\dotsc, n\}$ we denote by $G_I$ the group of orthogonal transformations $T$of $V_I$ such that $Tv_i=\pm v_i$, $\forall i\in I$. Clearly $\pm \bone_{V_I}\subset G_I$. The set $I$ is called irreducible if $G_I=\{\pm \bone_{V_I}\}$.
Note that if two irreducible sets $I,J$ are not disjoint, then their union is also irreducible. Thus, every $i=1,\dotsc, n$ is contained in a unique maximal irreducible subset and we obtain a partition of $\{1,\dotsc, n\}$ into maximal irreducible sets. These maximal irreducible sets are precisely the vertex sets of the components $\Gamma_\alpha$.
Comment. It seems to me that requiring the knowledges of the volumes of all faces is too strong a condition. There are $2^n-1$ faces whereas a basis is determined by $n^2$ numbers. Note that the set of bases of $\bR^n$ modulo the action of $O(n)$ is a space of dimension
$$ n^2-\frac{ n(n-1)}{2}=\frac{n(n+1)}{2}=n+{n \choose 2}. $$
This suggests that, the result ought to be true under weaker assumptions.